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Janna Levin: Black Holes, Wormhol… — Lex Fridman shadowing | TryShadowing
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Lex Fridman
Janna Levin: Black Holes, Wormholes, Aliens, Paradoxes & Extra Dimensions | Lex Fridman Podcast #468
Janna Levin: Black Holes, Wormholes, Aliens, Paradoxes & Extra Dimensions | Lex Fridman Podcast #468
Lex Fridman
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3:00:50 · May 5, 2025
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Black
holes
curve
space
and
time
around
them
in
the
way
that
we've
been
describing.
Translating…
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Original
Line
1
/3929
0:00
Black holes curve space and time around them in the way that we've been describing.
0:04
Things follow along the curves in space.
0:05
If the black holes move around,
0:07
the curves have to follow them, right?
0:10
But they can't travel faster than the speed of light either.
0:13
So what happens is
0:15
black holes, let's say, move around.
0:16
Maybe I've got two black holes in orbit around each other. That can happen.
0:20
It takes a while.
0:21
A wave is created
0:22
in the actual shape of space.
0:24
And that wave follows the black holes.
0:26
Those black holes are undulating.
0:28
Eventually, those two black holes will merge.
0:31
And as we were talking about, it doesn't take an infinite time, even though
0:34
there's time dilation because they're both so big.
0:36
They're really deforming spaceime a lot.
0:39
I don't have a little tiny marble falling across an event horizon.
0:42
I have two event horizons.
0:43
And in the simulations,
0:44
you can see it bobble
0:46
and they merge together.
0:48
They make one bigger black hole.
0:49
And then it radiates
0:50
in the gravitational waves.
0:52
It radiates away all those imperfections
0:54
and it settles down to one
0:56
quscent perfectly silent black hole that's spinning. Beautiful stuff.
1:01
And it emits E= MC² energy.
1:04
So the mass of the final black hole
1:06
will be less than the sum of the two starter black holes.
1:10
And that energy is radiated
1:12
away in this ringing of spaceime.
1:14
It's really important to emphasize
1:16
that it's not light.
1:18
None of this has to do
1:20
literally with light that we can detect with normal things that detect light.
1:25
X-rays form of light.
1:26
Gamma rays are a form of light.
1:28
Infrared, optical, all this whole electromagnetic spectrum.
1:31
None of it is emitted as light. It's completely dark.
1:34
It's only emitted in the rippling of the shape of space.
1:37
A lot of times it's likened closer to sound.
1:39
Technically, we've kind of argued.
1:40
I mean, I haven't done an anatomical
1:42
calculation, but if you're near enough
1:45
to two colliding black holes, they actually ring spaceime in the human auditory range.
1:49
The frequency is actually in the human auditory range
1:53
that the shape of space could squeeze and stretch your eardrum even in vacuum.
1:58
And you could hear literally hear these waves ringing.
2:03
The following is a conversation
2:05
with Jenna Levan, a theoretical
2:08
physicist and cosmologist specializing
2:10
in black holes, cosmology
2:12
of extra dimensions, topology of the universe,
2:15
and gravitational waves in spaceime.
2:18
She has also written some incredible
2:20
books including how the universe got its spots
2:24
on the topic of the shape and the size of the universe,
2:27
a mad man dreams of touring machines
2:29
on the topic of genius
2:31
madness and the limits of knowledge.
2:34
Black hole blues and
2:36
other songs from outer space
2:39
on the topic of LIGO
2:40
and the detection of gravitational
2:42
waves and black hole survival
2:45
guide all about black holes.
2:49
This was a fun and fascinating conversation.
2:53
This is a Lexman podcast.
2:55
To support it, please check out our sponsors in the description.
2:59
And now, dear friends, here's Jenna 11.
3:03
I should say that you sent me a message
3:05
about not starting early in the morning,
3:07
and that made me feel like we're kindred spirits.
3:11
You wrote to me, "When the great physicist
3:13
Sydney Coleman was asked to attend a 9:00 a.m.
3:16
meeting, his reply was, "I can't stay up that late." Yeah. So, classic. Sydney was beloved.
3:23
I think all the best thoughts, honestly,
3:25
maybe the worst thoughts, too, are all come at night.
3:28
There's something There's something about the night.
3:29
Maybe it's the silence.
3:31
Maybe it's the peace all around.
3:32
Maybe it's the darkness and you
3:35
you could be with yourself and you could think deeply.
3:38
I feel like there's stolen hours in the middle of the night because it's not busy.
3:42
Your gadgets aren't pinging.
3:44
There's really no pressure to do anything but I'm off and awake
3:48
in the middle of the night
3:50
and so it's sort of like these extra hours of the day.
3:52
I think we were exchanging messages at 4 in the morning. Okay.
3:57
So in that way, many other ways were kindred spirits. M.
3:59
So, let's go in the
4:01
one of the coolest objects
4:03
in the universe, black holes. What are they?
4:06
And maybe even a good way to start is to talk about how are they Yeah.
4:13
In a way, people
4:14
often confuse how they're formed with
4:17
the concept of the black hole in the first place.
4:19
So when black holes were first proposed,
4:22
Einstein was very surprised
4:24
that such a solution could be found so quickly but really thought nature
4:28
would protect us from their formation.
4:30
And then nature thinks of a way nature thinks of a way to make
4:33
these crazy objects which is to kill off a few stars.
4:36
But then I think that there's a confusion
4:38
that dead stars, these very very massive stars that die
4:42
are synonymous with the phenomenon of black hole.
4:46
And it's really not the case.
4:47
Black holes are more
4:49
general and more fundamental
4:51
than just the death state of a star.
4:54
But even the history of how
4:56
people realize that stars could form
4:59
black holes is is is
5:00
quite fascinating because the entire idea really just started as a thought experiment.
5:05
And if you think of it's
5:06
1915 1916 when Einstein
5:09
fully describes relativity in a way that's the canonical formulation.
5:14
It was a lot of changing back and forth before then.
5:17
And it's World War I and he gets a message
5:20
from the Eastern Front from a friend of his, Carl Shortfield,
5:23
who's who solved Einstein's
5:25
equations, you know, between
5:27
sitting in the trenches
5:28
and like cannon fire.
5:30
Um, it was joked that he was calculating ballistic trajectories.
5:34
He's also perusing the proceedings of the Prussian Academy of Sciences as you do.
5:40
and he was an astronomer
5:42
um who had enlisted
5:44
in his 40s and he finds this really remarkable
5:47
solution to Einstein's equations and it's the first exact solution.
5:51
He doesn't call it a black hole.
5:52
It's not called a black hole for decades.
5:55
But what I love about what Schwarz shield did is it's a thought experiment.
5:58
It's not about observations.
6:00
It's not about making these things in nature.
6:03
Um it's really just about the idea.
6:05
He sets up this completely untenable situation.
6:09
and he says, "Imagine
6:11
I crush all the mass of a star to a point."
6:13
Don't ask how that's done because that's really absurd.
6:17
Um, but let's just pretend
6:18
and let's just imagine that that that's a scenario.
6:21
And then he wants to decide
6:23
what happens to spacetime
6:25
if I set up this
6:26
confounding but somehow very simple scenario.
6:30
And really what Einstein's equations were were telling everybody at the time was that
6:34
matter and energy curve space and time
6:37
and then curved spacetime tells matter and energy how to fall
6:40
once the spacetime shaped.
6:42
So he finds this beautiful solution
6:44
and the most amazing thing about a solution is he finds this
6:47
demarcation which is the event horizon
6:50
which is the region beyond which
6:52
not even light can escape.
6:55
And if you were to ask me today all these
7:01
decass crushed to a point.
7:04
The black hole is the event horizon.
7:07
The event horizon is really just
7:08
a point in spaceime or or a region in spaceime.
7:12
It's actually in this case a surface in spaceime.
7:15
And it marks uh a separation
7:18
in events which is why it's called an event horizon.
7:21
Everything outside is causally
7:23
separated from the inside
7:25
in so far as what's inside the event horizon
7:27
can't affect events outside.
7:30
What's outside can affect events inside.
7:33
I can throw a probe
7:34
into a black hole and cause something to happen on the inside.
7:38
But the opposite isn't true.
7:39
Somebody who fell in can't send a probe out.
7:42
And this oneway aspect
7:43
really is what's profound about the black hole.
7:47
Um, sometimes we talk about the black holes being nothing because at the event
7:51
horizon there's really nothing there.
7:54
Uh, sometimes when we when we think about black holes, we want to imagine
7:57
a really dense dead star.
7:59
But if you go up to the event horizon,
8:01
it's an empty region of spaceime.
8:04
It's it's more of a place
8:06
than it is a thing.
8:08
And Einstein found this fascinating.
8:10
He helped get the work published, but he really didn't think
8:13
these would form in nature.
8:15
I doubt Carl Schwarz shield did either.
8:17
Um I think they thought they were
8:20
uh solving theoretical mathematical problems.
8:24
Um but not describing
8:27
this what turned out to be the end state of gravitational collapse.
8:31
And maybe the purpose of the thought experiment was to find the limitations of the theory.
8:35
So you you find the most extreme
8:38
versions in order to
8:40
understand where it breaks down. Yeah.
8:42
And it just so happens in this
8:43
case that might actually predict these extreme kinds of objects. It does both.
8:49
So it also describes the sun from far away.
8:53
So the same solution
8:55
does a great job
8:56
helping us understand the Earth's orbit around the sun. It's incredible.
9:00
Does a great job. It's almost overkill.
9:02
You don't really need to be that precise as relativity.
9:05
Um, and yes, it predicts
9:08
the phenomenon of black holes, but doesn't really explain how nature would form them.
9:12
But then it also
9:13
on top of that does signal the breakdown of the theory.
9:16
I mean, you're quite right about that.
9:17
It actually says, "Oh, man."
9:18
But you you go all the way towards the center
9:21
and yeah, this doesn't sound right anymore.
9:25
Um, sometimes I liken it to, you know, it's like a dying
9:28
man marking in the dirt
9:31
that something's gone wrong here, right?
9:33
it it it's signaling that that there's some culprit
9:36
there's something wrong in the theory and
9:38
um and even Roger Penrose
9:41
who did this general work trying to
9:45
uh the formation of black holes from gravitational
9:47
collapse he thought oh yeah there's a singularity
9:50
that's inevitable it's in every
9:53
there's no way around it once you form a black hole
9:57
but he said this is probably just a shortcoming
9:59
of the fact that we've forgotten to include quantum mechanics
10:02
and that when we do
10:04
we'll understand this um differently.
10:07
So according to him the closer you get to the singularity the more quantum
10:10
mechanics comes into play and therefore
10:13
there is no singularity there's something else.
10:14
I think everybody would say that.
10:16
I think everybody would say
10:18
the closer you get to the singularity
10:19
for sure you have to include quantum mechanics.
10:22
You just can't consistently
10:24
talk about magnifying such
10:26
small scales, having such enormous
10:29
uh ruptures and and
10:31
curvatures and energy scales and not include quantum mechanics that that's just inconsistent
10:36
with the world as we understand it.
10:38
So you've described the
10:40
brainbreaking idea that a black hole is
10:43
uh not so much a super dense
10:46
matter as it's sometimes described, but it's more
10:49
akin to, you know, a region
10:51
of space time, but even more so just nothing. Yeah, it's nothing.
10:57
That that's a thing you seem to like to say.
10:59
I do I do like to say that
11:01
black holes are no thing. They're nothing. Okay.
11:04
So what what what does that mean?
11:06
That's that's what I mean.
11:07
That's the more profound aspect of the black hole.
11:09
So you asked originally
11:11
um how do they form?
11:12
And I think that that
11:14
that even when you try to form them in messy astrophysical
11:18
systems, there's still nothing
11:20
at the end of the day left behind.
11:22
And um this was a very big surprise.
11:25
Even though Einstein accepted that this was a true prediction,
11:28
he didn't think that that they'd be made.
11:31
And it was quite astounding
11:32
that that people like Oppenheimer
11:35
actually it's probably Oenheimer's
11:37
most important theoretical work
11:39
um who are thinking
11:40
about nuclear physics and quantum mechanics but in the context of these kind of
11:44
utopian questions why do stars shine
11:47
um why is the sun radiant and hot and
11:50
this amazing source of light and it was people like Oenheimer
11:54
who began to ask the question well
11:56
could stars collapse to form
11:59
black holes Could they
12:01
become so dense that
12:04
uh eventually not even light would escape?
12:07
And that's why I think people think
12:09
that black holes are these dense objects.
12:12
That's often how it's described.
12:14
But actually what happens these very massive stars, they're burning thermonuclear fuel.
12:18
You know, they're earthfuls of thermonuclear fuel.
12:21
They're burning um and
12:23
emitting energy in E= MC² energy. So it's fusing.
12:27
It's a fusion bomb.
12:28
It's a constantly going thermonuclear bomb.
12:31
And um eventually it's going to run out of fuel.
12:33
It's going to run out of hydrogen, helium, stuff to fuse.
12:37
It hits an iron core.
12:39
Iron to go past iron with fusion
12:42
is actually energetically expensive.
12:44
So it's no longer
12:45
going to do that so easily.
12:47
So suddenly it's run out of fuel.
12:48
And if the star is very very very massive, much more massive than our
12:52
sun, maybe 20, 30 times the mass of our sun,
12:55
it'll collapse under its own weight.
12:57
And that collapse is
12:59
incredibly fast and dramatic and it creates a shock wave.
13:02
So that's the supernova explosion.
13:04
So a lot of these
13:05
they rebound because once they crunch
13:08
they've reached a new critical
13:10
uh capacity where they can
13:12
reignite to higher elements, heavier elements
13:15
and that sets off a bomb essentially.
13:18
So, the star explodes
13:20
helpfully because that's why you and I are here because
13:24
stars send their material back out into space and
13:27
you and I get to be made of carbon and oxygen and all this good stuff.
13:31
We're not just hydrogen.
13:33
So, the suns do that for us.
13:35
And then what's left
13:36
sometimes ends at a neutron star,
13:38
which is a very cool object,
13:40
very fascinating object, super dense,
13:43
uh, but bigger than a black hole,
13:46
meaning it's it's it's
13:47
not compact enough to become a black hole.
13:50
It's an actual thing.
13:51
A neutron star is a real thing.
13:52
It's like a giant neutron.
13:54
Literally, electrons get jammed into the protons and make this giant nucleus
13:58
and this superconducting matter.
14:00
Very strange, amazing objects.
14:03
But if it's heavier than that the core
14:05
and that's you know heavier than twice the mass of the sun
14:09
um it will become a black hole and Oenheimer
14:13
was wrote this beautiful paper in
14:15
1939 with his student
14:17
uh saying that they believed
14:20
that the end state
14:21
of gravitational collapse is actually a black hole.
14:24
This is stunning and
14:26
really um a visionary conclusion.
14:30
Now, the paper is published the same day the Nazis
14:32
advance on Poland and so
14:35
it does not get a lot of fanfare in the newspapers.
14:38
Yeah, we think there's a lot of drama today on social media. Imagine that.
14:43
Like here's a guy
14:44
who predicts how actually
14:46
in nature would be the formation of this most radical of object that broke
14:51
even Einstein's brain while
14:55
one of the most evil
14:56
if not the most evil humans in history
14:59
starting a uh the first steps of a global war.
15:02
What I also love about that lesson is how agnostic
15:04
science is because he was asking these utopian questions as were other people of
15:09
the time about the nuclear physics and stars.
15:12
You might know this play Copenhagen by Michael Fra.
15:15
There's this line that he attributes to Boore and Boore was
15:18
the great thinker of early
15:21
foundations of quantum mechanics,
15:23
Danish physicist, where Boore says to his wife, "Nobody's
15:27
thought of a way to kill people using quantum mechanics."
15:30
Now, of course, then there's the nuclear bomb.
15:33
And what I love about
15:35
this was the pressure scientists were under to do something
15:39
with this nuclear physics and and to enter this race over
15:43
um a nuclear weapon.
15:44
But really at the same time, 1939
15:46
really uh Oenheimer's thinking about black holes.
15:50
There's a there's even a small line in Chris Nolan's film.
15:53
It's very hard to catch.
15:55
There's a reference to it in the film where he they're sort of joking
15:58
well I guess nobody's going to pay attention to your paper now
16:00
you know because uh because of the Nazi advance on Poland
16:04
that's the other remarkable thing about Oppenheimer
16:06
is he's also a central figure in the construction of the bomb
16:09
right so it's theory and experiment
16:12
clashing together with the geopolitics
16:14
exactly so of course Oppenheimer
16:17
now known as the father
16:19
of the atomic bomb
16:20
um he talks about destroyers
16:22
of worlds um But it's the same technology
16:26
and that's what I mean by science is agnostic, right?
16:28
It's the same technology
16:29
overcoming a critical mass
16:32
um igniting thermonuclear fusion.
16:35
Eventually there was a fision the original bomb was a fision bomb and fision
16:38
was first shown by
16:39
Le Mitner who showed that a certain uranium
16:42
when you bombarded it with protons
16:44
broke into smaller pieces that
16:46
were less than the uranium. Right?
16:48
So some of that mass that E= MC²
16:51
energy had escaped and
16:53
it was the first kind of concrete demonstration
16:56
of this Einstein's most famous equation.
16:59
So all of this comes together
17:01
but the story of
17:03
um they still weren't called black holes.
17:05
This is 1939 and they had these very long-winded
17:08
ways of describing the end state the catastrophic
17:11
end state of gravitational collapse.
17:14
But what you have to imagine is as this star collapses.
17:17
So now, so what's the sun?
17:18
The sun's a million
17:20
and a half kilometers across.
17:22
So imagine a star much bigger than the sun. Much bigger radius.
17:26
And it's so heavy it collapses. It supernovas.
17:28
What's left is still maybe 10 times the mass of the sun.
17:31
Just what's left in that core.
17:34
And it continues to collapse.
17:35
And when that reaches about
17:37
60 kilometers across, like just imagine 10 times the mass of the sun citys sized.
17:42
That is a really dense object.
17:45
And now the black hole essentially has begun to form.
17:48
Meaning the curve in spaceime
17:50
is so tremendous that not even light can escape.
17:53
The event horizon forms.
17:55
But the event horizon
17:56
is almost imprinted on the spacetime
17:59
because the star can't sit there in that dense state
18:03
any more than it can race outward at the speed of light
18:05
because even light is forced to rain inwards.
18:08
So the star continues to fall
18:10
and that's the magic part.
18:12
The star leaves the event horizon
18:14
behind and it continues
18:16
to fall and it falls into the interior of the black hole.
18:20
Where it goes, nobody really knows.
18:23
But it's gone from sight. It goes dark.
18:27
There's this quote by John Wheeler who's like granddaddy
18:30
of American relativity and he has a line that's something to the effect.
18:34
Um, the star like the Cheshire
18:36
cat fades from view.
18:38
One leaves behind only its grin,
18:40
the other only its gravitational attraction.
18:43
And he was giving a lecture.
18:46
It's actually above Tom's restaurant,
18:47
you know, from Seinfeld
18:49
near Colombia in New York. Nice.
18:52
There was a a place or there still is a place there where
18:55
people were giving lectures about astrophysics. And it's 1967.
19:00
Wheeler is exhaustively saying this
19:03
loaded term, the end state of catastrophic gravitational collapse.
19:08
And rumor is that someone shouts from the back row, well, how about black hole?
19:12
And um apparently he then foists
19:15
this term on the world.
19:18
Wheelerhead way of doing that.
19:19
Well, I love terms like that.
19:20
Big bang, black hole.
19:22
There's some I mean, it's just pointing out the elephant in the room and
19:26
calling it an elephant.
19:28
It is a black hole.
19:29
That's a pretty uh
19:31
accurate and deep description.
19:32
I just wanted to
19:34
point out that the
19:35
just looking for the first time at a 1939 paper from Oppenheimer.
19:38
It's like two page.
19:39
It's like three pages.
19:40
Oh yeah, it's gorgeous.
19:42
The simplicity of some of these that's so gangster.
19:45
Just revolutionize all of physics with this with you know Einstein
19:48
did that multiple times in a single year. Mhm.
19:51
When all thermonuclear sources of energy are exhausted, a sufficiently heavy star will collapse. That's an opener. Mhm.
19:58
Unless fision due to rotation,
20:00
the radiation of mass
20:01
or the blowing off of mass by
20:04
radiation reduce the stars mass to orders of that of the sun,
20:07
this contraction will continue indefinitely.
20:10
And it goes on that way. Yeah.
20:11
Now, I have to say that Wheeler,
20:13
who actually coins the term
20:15
black hole, uh gives Oenheimer
20:17
quite a terrible time about this.
20:19
He thinks he's wrong.
20:20
and they entered what has sometimes been described as kind of a bitter I
20:26
don't know if you would actually say feud but there were bad
20:28
feelings and um Wheeler actually spent decades
20:33
uh saying Oenheimer was wrong and
20:36
eventually with his computer
20:38
work that early work that Wheeler was doing with computers when he was also
20:42
trying to understand nuclear weapons
20:44
and in peace time
20:46
world found themselves returning again to these astrophysical
20:49
questions uh decided that actually Oenheimer had been right.
20:54
He thought it was too simplistic,
20:56
too idealized a setup that they had used and that if you you looked
21:00
at something that was more realistic
21:02
and more complicated that it it just simply
21:04
it just would go away.
21:06
And in fact, he he draws the opposite conclusion.
21:08
There's a story that Oppenheimer
21:10
was sitting outside of the auditorium
21:12
when Wheeler was coming forth
21:15
with his declaration that in fact
21:18
black holes were the likely end state of gravitational collapse for very very heavy
21:22
stars and um when asked about it Oppenheimer
21:25
sort of said well I've moved on to other things
21:28
because you've written in many places about the human beings behind the science
21:32
I have to ask you about this about nuclear weapons
21:35
where is the greatest of physicists coming together to create this most terrifying
21:39
and powerful of a technology.
21:42
And now I get to talk to world leaders for whom this technology
21:45
is part of the
21:47
tools that is used
21:50
perhaps implicitly on the chessboard of geopolitics.
21:54
What what can you say
21:56
as a person who's a physicist and who have studied the physicists and written
21:59
about the physicists the humans behind this
22:02
about this moment in human history
22:04
when physicists came together
22:07
and created this weapon that's powerful enough to destroy all of human civilization.
22:13
I think it's an
22:15
excruciating moment in in the history of science
22:19
and um people talk about
22:23
Heisenberg who stayed in Germany and and
22:26
uh worked for the Nazis in their own attempt
22:29
to build the bomb.
22:30
There was this kind of hopeful
22:32
talk that maybe Heisenberg
22:34
had intentionally derailed the nuclear weapons program.
22:37
But I think that's been largely discredited
22:40
that he would have made the bomb could he had he not made some
22:44
really kind of simple
22:46
errors in his original estimates about how much material would be required or how
22:50
they would get over the energy barriers.
22:52
And that's a terrifying thought.
22:55
Um, I I don't know that any of us can really put ourselves in
22:59
that position of imagining
23:01
that we're faced with that quandry,
23:04
having to take the initiative to participate in thinking of a way that quantum
23:07
mechanics can kill people
23:09
and then making the bomb.
23:10
I think overwhelmingly physicists today
23:13
feel we should not
23:16
continue in the proliferation of nuclear weapons.
23:19
Very few um theoretical
23:21
physicists want to see this continue.
23:24
that moment in history,
23:25
the Soviet Union had incredible scientists.
23:27
Nazi Germany had incredible scientists
23:30
and the United States had incredible scientists.
23:32
And it's very easy to imagine that
23:34
one of those three
23:37
would have created the bomb first,
23:38
not the United States.
23:40
And how different would the world be?
23:43
The game theory of that
23:45
I think say the probability is 33%
23:50
that it was the United States.
23:52
If the Soviet Union
23:53
had the bomb, I think I think they would have used it in a
23:58
much more terrifying way
24:00
in the in the European theater and maybe turn on the United States.
24:04
And obviously with Hitler, he would have used it.
24:07
I think there's no question he would have used
24:09
it to to to
24:11
kill hundreds of millions of people.
24:13
In the game theory
24:14
version, this was the least harmful outcome. Yes. Yes.
24:17
But there is no outcome with no bomb
24:20
that that any game theorist
24:22
would uh I think would play.
24:25
But I I think if we just remove the geopolitics
24:27
and the ideology and the evil dictators,
24:31
all of those people are just scientists.
24:35
I think they don't necessarily
24:37
even think about the ideology.
24:39
And it's a it's a it's a deep lesson about the connection between
24:43
great science and the
24:46
annoying sometimes evil politicians
24:48
that use that science for means that are either good or bad. Mhm.
24:54
And the scientists perhaps
24:56
don't boy do they even have control of how that science is used. It's hard.
25:00
They don't have control. Right.
25:02
once it's once it's made, it's no longer scientific
25:05
reasoning that dictates the use
25:08
or um it's restraint.
25:11
But I will say that I do believe that it wasn't a 30
25:15
one-third down the line
25:17
because America was different and I think that's something we have to think about
25:21
right now in this particular climate.
25:23
So many scientists fled here.
25:25
They fled to here.
25:28
Americans weren't fleeing to Nazi Germany.
25:31
they came here and and
25:33
they were motivated um
25:36
by uh it's more than a patriotism,
25:39
you know, it was um I mean it was a patriotism
25:41
obviously, but it was sort of more than that.
25:43
It was really understanding
25:45
the threat of Europe,
25:46
uh what was going on in Europe and
25:48
um and what that life,
25:51
how quickly it turned,
25:53
how quickly this freespirited
25:55
Berlin culture, you know, was
25:57
suddenly in this repressive
26:00
and terrifying uh regime.
26:02
So, I think that it was a much higher
26:06
chance that it happened here in America. Yeah.
26:07
And there's something about the American system,
26:10
the you know it's cliche to say but the freedom
26:13
all the different individual freedoms
26:15
that enable a very vibrant
26:17
at its best a very vibrant scientific community and that's really exciting
26:20
absolutely to scientists and it's very valuable to ma maintain that right
26:25
the the vibrancy of the debate of the
26:28
funding those mechanisms absolutely the world
26:30
flocked here and that won't be the case if
26:34
we no longer have intellectual
26:36
freedom yeah there's there's something interesting to think about
26:39
the tension the cold war between China and the United States in the 21st
26:42
century you know some of those same questions some of those ideas will rise
26:46
up again and we want to make sure that
26:48
um there's a vibrant
26:50
free exchange of scientific ideas
26:52
I believe most Nobel
26:54
prizes come from the United States right
26:57
oh yeah I don't have the number but I disproportionately
27:00
so disproportionately so in fact a lot of them from
27:04
particle physics came from the Bronx
27:07
and they were European immigrants.
27:09
How do you explain this?
27:10
Fled Europe um precisely because of the geopolitics we're describing. Yeah.
27:14
And so instead of being Nobel Prize winners from the Soviet Union or from
27:18
the Eastern Block, they were from the Bronx.
27:22
And that's the thing you write about and we'll return to time and time
27:25
again that you know science is done by humans.
27:27
And some of those humans are fascinating. There's tensions. There's battles.
27:30
There's some are loners.
27:32
Some are great collaborators.
27:33
Some are tormented, some are easygoing,
27:36
all this kind of stuff.
27:37
And that's the beautiful thing about it.
27:38
We forget sometimes is it's humans
27:41
and humans are messy and complicated and beautiful and all of that. Yeah.
27:45
Uh so what were we talking about?
27:47
Oh, the star is collapsing. Okay.
27:51
So can we just
27:52
return to the collapse of a star
27:55
that forms a black hole?
27:58
At which point does the super dense thing become nothing?
28:02
if we can just like linger on this concept. Yeah.
28:05
So if I were falling into a black hole and I I I
28:09
tried really fast right as I crossed
28:11
this empty region but this demarcation
28:14
I happened to know where it was.
28:16
I calculated because there's no line there.
28:19
There's no sign that it's there. There's no signpost.
28:22
Um I could emit a little light pulse and try to send it outward
28:26
exactly at the event horizon.
28:28
So it's racing outward at the speed of light.
28:30
It can hover there because from my perspective, it's very strange.
28:34
The spaceime is like a waterfall
28:35
raining in and I'm being dragged in with that waterfall.
28:39
I can't stop at the event horizon.
28:40
It comes, it goes.
28:41
It's behind me really quickly.
28:44
That light beam can try to sit there because it's like it's like a
28:46
fish swimming against the Niagara,
28:50
you know, swimming against the waterfall.
28:51
It's like stuck there.
28:52
But it's like stuck there.
28:54
Um, and so that's one way you could have a little signpost.
28:56
You know, if you fly by, you think it's moving at the speed of light.
28:59
It flies past you at the speed of light, but it's sitting right there
29:02
at the event horizon.
29:03
So, you're falling back,
29:04
cross the event horizon.
29:06
Right at that point, you shoot outwards a photon. Yes.
29:09
And it's just stuck there.
29:10
It just gets stuck there.
29:12
Now, it's very unstable.
29:14
So, the star can't sit there is the point.
29:16
It It just can't.
29:17
So, it rains inward with this waterfall.
29:20
But from the outside,
29:22
all we should ever really care about is the event horizon because I can't
29:25
know what happens to it.
29:26
It could be pure matter and antimatter
29:28
thrown together which annihilates
29:30
into photons on the inside and
29:33
loses all its mass into the energy of light.
29:34
Won't matter to me because I can't know anything
29:37
about what happened on the inside. Okay.
29:39
Can we just like linger on this?
29:40
So what models do we have about what happens on the inside of the
29:43
black hole at that moment?
29:44
So I guess that one of the intuitions,
29:46
one of the big reminders
29:48
that you're giving to us is like,
29:50
hey, we know very
29:51
little about what can happen on the inside of a black hole.
29:55
And that's why we have to be careful about making
29:58
it's better to think about the black hole as an event horizon.
30:01
But what can we know
30:03
and what do we know about the physics of
30:06
of space time inside the black hole?
30:09
I don't mind being incautious
30:11
about thinking about what the math tells us.
30:13
So I'm not such a an observer.
30:18
I'm very theoretical in my work.
30:20
It's really pen on paper a lot.
30:22
Um these are thought experiments that I think we we can perform and contemplate.
30:27
Um whether or not we'll ever know is another question.
30:30
And um so one of the most beautiful things
30:34
that we suspect happens on the inside of a black hole is that space
30:37
and time in some sense swap places.
30:41
So while I'm on the outside of the black hole,
30:44
let's say I'm in a nice comfortable space station.
30:47
This black hole is maybe
30:49
10 times the mass of the sun, 60 kilometers across.
30:52
I could be a 100 kilometers out.
30:53
That's very, very close. Orbiting quite safely. No big deal.
30:58
You know, hanging out.
30:59
Uh I don't bug the black hole.
31:01
Black hole doesn't bug me.
31:02
It won't suck me up like a vacuum or anything crazy.
31:05
But uh some my my astronaut friend jumps in.
31:10
Um, as they cross the event horizon,
31:13
what I'm calling space, I'm looking on the outside at this
31:17
spherical shadow of the black hole cast by maybe light around it.
31:21
It's a shadow because everything
31:23
gets too close, falls in.
31:24
It's just this um
31:26
uh just contrast against a bright sky.
31:29
I think, oh, there's a center of a sphere
31:32
and in the center of the sphere is the singularity.
31:34
It's a point in space from my perspective,
31:36
but from the perspective of the astronaut who falls in,
31:39
it's actually a point in time.
31:42
So their notions of space and time have rotated
31:45
so completely that what I'm calling a direction in space towards the center of
31:50
the black hole, like the center of a physical sphere,
31:52
they're going to tell me, well, they can't tell me, but they're going to
31:55
come to the conclusion, oh no, that's not a location in space.
31:59
That's a location in time.
32:01
In other words, the singularity
32:03
ends up in their future
32:05
and they can no more avoid the singularity
32:08
than they can avoid
32:09
time coming their way.
32:11
So there's no shenanigans
32:13
you can do once you're inside the black hole to try to skirt it the singularity.
32:18
You can't set yourself up in orbit around it.
32:21
You can't try to fire rockets and stay away from it because it's in
32:24
your future and there's an inevitable
32:27
moment when you will hit it.
32:29
Usually for a stellar mass black hole, we think it's micros secondsonds.
32:33
Micros secondsonds to get from the event horizon to the to the singularity. To the singularity. Oh boy. Oh boy.
32:39
So that's describing from the
32:42
your astronaut friend's perspective. Yes.
32:45
From their perspective, the singularities in their future.
32:48
But from your perspective,
32:50
what do you see when your
32:52
friend falls into the black hole and you're
32:55
chilling outside and watching?
32:56
So, one way to think about this
32:59
um is to is to
33:02
think that as you're approaching the black hole,
33:05
the astronaut's spaceime is rotating
33:09
relative to your spacetime.
33:11
So, let's say right now
33:12
my left is your right.
33:15
We're not shocked by the fact that there's this relativity in left and right. It's completely understood.
33:20
And I can perform a spatial
33:21
rotation to align my left with your left.
33:25
Right now I've completely rotated left out. Right.
33:29
Um if I just want to draw a a a
33:32
kind of uh compass diagram, not a compass diagram, but you know at the
33:36
top of maps there's a northsoutheast west.
33:38
But now time is up down
33:41
and one direction of space is let's say east west.
33:44
As you approach the black hole it's as though you're rotating
33:47
in spaceime is one way of thinking about it.
33:50
So what is the effect of that?
33:52
The effect of that is as this astronaut gets closer and closer to the
33:57
horizon, part of their space
34:00
is rotated into my time and part of their time is rotated into my space.
34:06
So in other words, their clocks
34:08
seem to be less
34:10
aligned with my time.
34:13
And the overall effect is that their time seems to dilate.
34:16
the spacing between ticks on the clock of their watch, let's say,
34:21
um on the on the face of their watch,
34:24
uh is is elongated,
34:26
dilated relative to mine.
34:28
And it seems to me that their watches are running slowly, even though they
34:32
were made in the same factory as mine.
34:33
They were both synchronized
34:34
beautifully and they're excellent Swiss watches.
34:37
Um, it seems as though time is elapsing more slowly for my
34:41
companion and uh likewise
34:44
for them it seems like mine's going really fast.
34:48
So years could elapse
34:51
in my space station.
34:52
My plants come and go. They die. I age faster.
34:55
I've got gray hair.
34:56
Um, and they're falling in and it's been minutes
35:00
in their frame of reference.
35:02
Um, flowers in their little rocket ship haven't rotted.
35:07
They don't have gray hair.
35:09
Their biological clocks have slowown down relative to ours.
35:13
Eventually at the event horizon, it's so extreme. It's so slow.
35:17
It's as though their clocks have stopped
35:19
altogether from my point of view.
35:21
And that's to say that it's as though
35:24
their time is completely rotated into my space.
35:27
And this is connected with the idea that inside the black hole space and
35:30
time have switched places.
35:33
Um, so I might see them hover there for millennia.
35:39
Other astronauts could be born on my space station.
35:42
Generations could be populated
35:44
there watching this poor astronaut never fall in.
35:49
So basically the time
35:51
almost comes to a standstill,
35:54
but we still they do fall in, right?
35:57
They do fall in eventually.
35:59
Now that's because they have some mass of their own. Yeah.
36:02
So they're not a perfectly
36:03
light particle and so
36:06
they deform the event horizon a little bit.
36:09
You'll actually see the event
36:10
horizon bobble and absorb the astronaut.
36:14
So in some finite time the astronaut will actually fall in.
36:18
So it's a it's like this weird
36:20
space-time bubble that we have around us. Mhm.
36:23
And then there's a very big
36:25
space-time curvature bubble thing from the black hole and they
36:29
there's a nice swirly type situation going on.
36:32
That's how you get sucked up. Yeah.
36:33
So if you're a perfect like
36:35
uh infinitely small particle, you would just be take longer and longer
36:39
and probably just be
36:40
stuck there or something.
36:41
But no, there's quantum mechanics. Mhm.
36:43
Eventually you'll fall in there.
36:44
Any perturbation will only go one way.
36:47
It's unstable in one direction.
36:49
In one direction only.
36:50
Um, but it's it's really
36:54
important to remember that from the point of view of the astronaut, not much
36:57
time has passed at all.
36:59
You just sail right across as far as you're concerned and
37:02
nothing dramatic happens here.
37:04
You might not even realize
37:05
you've come to the event horizon.
37:07
You you might not even realize you've crossed the event horizon
37:10
because it's there's nothing there. Right?
37:13
This is an empty region of spaceime.
37:16
There's no marker to tell you you've reached this very dangerous point of no return.
37:21
You can fire your rockets
37:22
like hell when you're on the outside and maybe even escape, right?
37:26
But once you get to that point, there's no amount of energy.
37:30
All the energy in the universe will not save you
37:33
from uh this demise.
37:36
You know, there's different size black holes. Mhm.
37:39
And maybe can we talk about the experience
37:41
that you have falling into a black hole depending on what the size of
37:44
the black hole is? Yeah.
37:45
cuz um as I understand if
37:47
the the the bigger it
37:50
is, the less drastic
37:53
the experience of falling into it.
37:56
Yeah, that might surprise people.
37:58
The bigger it is,
37:59
the less noticeable it is that you've
38:02
you've crossed the event horizon.
38:04
One way to think about it is um curvature
38:07
is less noticeable the bigger it is.
38:09
So, if I'm standing on a basketball,
38:11
I'm very aware I'm I'm balancing on a curved surface.
38:15
I my two feet are in different locations
38:17
and I really notice.
38:18
But on the Earth, you actually have to be kind of clever to deduce
38:21
that the Earth is curved.
38:23
The bigger the planet,
38:24
the less you're going to notice the curvature.
38:27
Um the the global curvature.
38:29
And it's the same thing with a black hole, a huge huge black hole.
38:32
It just is kind of feels like just flat.
38:35
You don't really notice.
38:37
I'm trying to figure out how the phys because if you don't notice
38:40
and there's nothing there
38:41
but the physics is weird
38:43
in your frame of reference. No.
38:47
Well, so another cool thing.
38:48
So I'd like to dispel myths. Yeah.
38:52
Do you need a minute?
38:55
You're holding your head.
38:56
There's a sense like you you should be able to know when you're inside
38:59
of a black hole when you've crossed the event horizon.
39:02
But no, from your frame of reference, you might not be able to know.
39:06
Yeah, at first at least, you might not realize what's happened.
39:10
There are some hints.
39:12
For instance, black holes are dark from the outside,
39:15
but they're not necessarily
39:16
dark on the inside.
39:18
So this is uh
39:21
a kind of fascinating
39:22
that your experience could be that it's quite bright
39:26
inside the black hole because all the light from the galaxy
39:29
can be shining in behind you
39:31
and it's focusing down because you're all
39:34
approaching this really focused region in the interior.
39:38
And so you actually see a bright
39:40
white flash of light as you approach the singularity.
39:43
Um, you know, I kind of uh I joke that it's a, you know,
39:46
it's like a near-death experience.
39:48
You see the light at the end of the tunnel.
39:50
So, you would see millennia pass on Earth.
39:52
You could see the evolution of
39:54
um the entire galaxy, you know, one big bright flash of light.
39:58
So, it's like a near-death experience, but it's a definitely a total death experience.
40:01
It goes pretty fast.
40:02
But you looking out,
40:04
you looking out, everything's going super fast. Yeah.
40:08
the clocks um on the earth on the space station
40:12
seem to be progressing
40:14
very rapidly relative to yours.
40:16
The light can catch up to you
40:18
and you get this bright beam of light as you see
40:21
the evolution of the galaxy
40:23
unfold and um I mean it sort of depends on the size of the black
40:28
hole and how long
40:29
you have to hang around.
40:30
The bigger the black hole the longer it takes you
40:32
to expire in the center.
40:35
Obviously the human uh sensory system we're not able
40:38
to process that information correctly
40:41
right it would be a microcond
40:42
in a right that would be too fast.
40:44
Yeah but it would be
40:46
wow it' be so cool to get that information
40:48
but a big black hole you could actually you know hang around for some months.
40:53
So yeah what's uh how are
40:55
small black holes versus super massive
40:58
uh black holes formed
41:00
just so people can kind of load that in.
41:03
Are they are they all is it always a star? No.
41:07
So this is also why it's important to think of black holes more abstractly.
41:13
They are something very profound in the universe and there are probably
41:17
multiple ways to make black holes.
41:19
Um making them with stars is most plentiful.
41:23
There could be hundreds of millions
41:24
maybe even a billion black holes in our Milky Way galaxy alone. that many stars.
41:29
It's only about 1%
41:30
of stars that will
41:33
um end their lives in in in a death state that is a black hole.
41:37
But we now see and this was really quite a surprise
41:41
that there are super massive black holes.
41:43
They're billions or even
41:46
hundreds of billions of times the mass of the sun and
41:50
um uh millions to to tens of billions maybe even hundreds of billions. So extremely massive.
41:56
We don't think that the universe has had enough time to make them from
42:00
stars that just merge.
42:02
We know that two black holes can merge
42:05
and make a bigger black hole and then those can merge and make a bigger black hole.
42:09
We don't think there's been enough time for that.
42:11
So, it's suspected that they're formed very early,
42:14
maybe even a hundred
42:16
few hundred million years
42:18
after the big bang and that they're formed
42:21
directly by collapsing out of primordial stuff. Mhm.
42:25
that there's a direct collapse
42:27
right into the black hole.
42:29
So like in the in the very early
42:31
universe, these are primordial
42:33
black holes from the stars.
42:36
Not quite Wait, how how do you get from that soup
42:39
black holes right away, right?
42:41
So it's odd, but
42:44
it's weirdly easier to make a big black hole out of something that's just
42:49
the density of air if it's really really as big as what we're talking about.
42:52
So, in some sense, if they're just allowed to directly collapse very early in
42:56
the universe's history, they can do that more easily.
43:00
Um, and it's so much so that we think that there's
43:03
one of these super massive black holes in the center of every galaxy.
43:08
So, they're not rare
43:09
and we know where they are.
43:10
They're in the nuclei of galaxies.
43:12
So, they're bound to the very early formation of entire galaxies
43:17
in um in a really surprising
43:19
and deeply connected way.
43:21
I wonder if the
43:22
like the chicken or the egg is it
43:25
uh like how critical
43:27
how essential are the super massive black holes to the formation of galaxies?
43:31
Yeah, I mean it's ongoing, right? It's ongoing.
43:34
Which came first, the black hole or the galaxy?
43:37
Um probably um big early
43:41
stars which were just made out of
43:43
hydrogen and helium from the big bang.
43:46
Um there wasn't anything else, not much of anything else.
43:49
um those early stars were forming and then maybe the black holes and kind
43:52
of the galaxies were like these
43:54
gassy clouds around them.
43:56
Um but there's probably a deep relationship
44:00
between the black hole powering
44:02
jets, these jets blowing material
44:05
out of the galaxy
44:06
that that shaped galaxies
44:09
maybe kind of curbed their growth.
44:12
Um and so I think the mechanisms
44:14
are still are still ongoing
44:17
attempts to understand exactly
44:20
the ordering of these things.
44:22
Can we get back to spacetime?
44:24
Just going back to the beginning of the 20th century.
44:26
How do you imagine spacetime?
44:28
How do we as human beings supposed to visualize and think about spacetime
44:32
where you know time is just another dimension in this 4D space
44:36
that combines space and time?
44:38
Because we've been talking about morphing in all kinds of different ways.
44:40
is a curvature of spacetime
44:42
like how do you
44:43
how are we supposed to conceive of it?
44:45
How do you think of it?
44:46
Yeah, time is just another dimension.
44:49
There are different ways we can think about it.
44:51
We imagine drawing a map of space
44:55
and treating time as another direction in map.
45:00
But we're limited because as three-dimensional
45:03
beings, we can't really draw
45:05
four dimensions, which is what I'd require.
45:07
three spatial because I'm pretty sure there's at least three.
45:10
I think there's probably more,
45:12
but um I'm happy just talking about the large dimensions,
45:15
the three we see
45:17
up, down, right, east, west,
45:21
uh north, south, three
45:23
spatial dimensions and time is the fourth.
45:26
Nobody can really visualize it.
45:30
Um but we know mathematically
45:32
how to unpack it on paper.
45:34
I can mathematically suppress
45:36
one of the spatial dimensions and then I can draw it pretty well.
45:40
Now the problem is that
45:42
we'd call it a ukitian spacetime.
45:44
A uklitian spacetime is when all the dimensions are orthogonal
45:48
and are treated equally.
45:49
Time is not another ukitian dimension.
45:52
It's actually a manowskian spacetime.
45:55
But it means that the
45:57
spacetime, we're misrepresenting it when we draw it, but we're misrepresenting
46:02
it in a way that we deeply understand.
46:04
I can give you an example.
46:05
The Earth, I can project onto a flat sheet of paper.
46:09
I am now misrepresenting
46:11
a map of the Earth.
46:12
And I know that, but I understand the rules for how to add distances
46:16
on this misrepresentation because the Earth is not a flat sheet of paper. It's a sphere.
46:21
And um and as long as I understand the rules for how I get
46:25
from the north pole to the south pole
46:28
that I'm moving along really a great arc and I understand that the distance
46:32
is not the distance I would measure on a flat sheet of paper
46:35
then I can do a really great job with a map
46:38
and understanding the rules of
46:40
addition multiplication and the geometry is not the geometry of a flat sheet of paper.
46:44
I can do the same thing with spacetime.
46:45
I can draw it on a flat sheet of paper
46:47
but I know that it's not actually a flat uklidian space.
46:51
And so my rules for measuring
46:53
distances are different than the rules I would use
46:57
that for instance cartisian rules of geometry.
47:00
I I would know to use the correct rules for manovski
47:03
spacetime and and that will allow me to to to to
47:08
calculate how long uh time has elapsed
47:12
which is now a kind of a length
47:14
a space-time length on my map
47:18
um between two relative observers.
47:20
and I will get the correct answer.
47:22
Um but only if I use these different rules.
47:25
So then what does
47:27
according to general relativity
47:28
does uh objects with mass due to the spacetime? Right. Exactly.
47:34
So Einstein struggled for this completely
47:37
general theory not a specific
47:40
solution like a black hole or an expanding spaceime or
47:43
galaxies make lenses or those are all solutions.
47:48
That's why what he did was so enormous.
47:49
It's an entire paradigm
47:51
that says over here is matter and energy.
47:55
I'm going to call that
47:56
the right hand side of the equation.
47:59
Everything on the right hand side of Einstein's
48:01
equations is how matter and energy are distributed in spaceime.
48:05
On the left hand side
48:07
tells you how space and time
48:09
deform in response to that matter and energy.
48:13
And it can be
48:14
impossible to solve some of those equations.
48:17
What was so amazing about what Shell
48:18
did is he found this very elegant simple solution within like a
48:22
month of reading um this final formulation.
48:27
But Einstein didn't go through and try to find all the solutions.
48:30
He sort of gave it to us, right?
48:32
He shared this and then
48:34
lots of people since
48:35
have been scrambling to try to
48:38
ah I can predict the curvature of the spaceime if I tell you how
48:41
the matter and energy is laid out.
48:43
If it's all compact in a spherical
48:45
system like a sun
48:46
or even a black hole,
48:48
I can understand the curves in the spaceime around it.
48:50
I can solve for the for the shape of the spacetime.
48:54
I can also say, well, what if the universe is full of gas or
48:57
light and it's all kind of uniform
48:59
everywhere and I'll find a different and equally surprising
49:03
solution, which is that the universe would expand.
49:06
In response to that, that it's not static,
49:09
that the distances between galaxies would grow.
49:11
This was a huge surprise to Einstein.
49:14
Um, so all of these consequences
49:16
of his theory, you know,
49:19
came with revelations that were not at all obvious when he first wrote down
49:25
um the general theory and he was afraid to take the consequences
49:28
of that theory seriously,
49:30
which is aen the theory itself
49:33
in its scope and grandeur
49:35
and power is scary.
49:38
So I can understand.
49:40
Then there's, you know, the
49:42
the edges of the theory where it falls apart.
49:44
The consequences of the theory that are extreme, it's hard to take seriously.
49:48
So you can sort of empathize. Yeah.
49:50
He very much resisted the expansion.
49:52
So if you think about 1905
49:54
when he's writing these sequence of unbelievable
49:58
papers as a 25year-old
50:00
who can't get a job, you know, as a physicist and he writes all
50:02
of these remarkable papers on relativity and quantum mechanics.
50:06
Um and then even
50:08
191516 he does not know that there are other galaxies out there.
50:12
This this was not known.
50:14
People had mused about it.
50:16
Um there were these kind of smudges on the sky that
50:20
people contemplated what if there are other island universes.
50:23
You know going back to Kant thought about this.
50:26
But it wasn't until Hubble
50:27
it really wasn't until the late 20s
50:30
um that it's confirmed
50:32
that there are other galaxies. Wow. Yeah.
50:35
He didn't obviously there's so much we
50:39
think of now that he didn't think of.
50:41
So there's no big bang static universe.
50:45
But these are all connected. Wow. Yeah.
50:48
So he's operating on very little information. Very little information. That's absolutely true.
50:55
Actually, one of the things I like to point out is the
50:58
idea of relativity was foisted
51:01
on people in this kind of cultural way.
51:04
But there's many ways in which you could call it a theory of absolutism.
51:08
And um the way Einstein
51:10
got there with so little information
51:14
um is by adhering
51:16
to certain very strict absolutes
51:18
like the absolute limit of the speed of light
51:21
and the absolute constancy
51:23
of the speed of light
51:25
which was completely bizarre
51:27
when it was first uh discovered.
51:30
really that was observed
51:31
through experiments trying to figure out
51:35
um you know what would the relative speed of light be?
51:38
It's the only really only massless
51:41
particles have this property that they have an absolute speed and if you think
51:44
about it it's incredibly strange.
51:45
Yeah, it's really strange. Incredibly strange.
51:47
And so so from from a theoretical
51:49
perspective he he's he takes that seriously.
51:52
He takes it very seriously and everyone else is trying to come up with
51:56
models to make it go away.
51:58
Um to make uh the speed of light be a little bit more reasonable
52:01
like everything else in the universe.
52:02
Um you know if I run at a car, two cars coming at each
52:05
other, they're coming at each other faster
52:07
than if one of them stops.
52:08
It's really a basic observation
52:10
of reality right here.
52:12
This is saying that if I'm racing at a light beam
52:16
um and you're standing still relative to the source,
52:20
uh we'll measure the same exact speed of light. Very strange.
52:24
And he gets to relativity
52:25
by saying, well, what's speed? Speed is distance.
52:29
It's space over time.
52:31
It's how far you travel.
52:33
Um it's the space you travel in a certain duration of time.
52:37
And he said, "Well, I bet something must be wrong then with space and time."
52:41
So this is an enormous leap.
52:43
He's willing to give up
52:44
the absolute character of space and time in favor
52:49
of keeping the speed of light constant.
52:52
How was he able to
52:55
intuitit a world of curved spaceime?
52:59
Like I think it's like one of the most special leaps
53:03
in human history, right?
53:06
Cuz you're it's amazing.
53:08
like it's very very very
53:10
difficult to make that kind of leap.
53:12
I I'll tell you it took me I think a long time
53:15
to I can't say this is how he got there exactly.
53:19
It's not as though I studied
53:20
the historical accounts of
53:23
or his description of his internal states.
53:27
This is more having learned the subject
53:31
how I try to tell people how to get there in a few short steps.
53:35
Um, one is to start with the equivalence principle
53:38
which he called the happiest thought of life.
53:41
And the equivalence principle
53:44
comes pretty early on in his thinking.
53:46
And and um it starts with something like this.
53:50
Like right now I think I'm feeling gravity because I'm sitting in this chair
53:54
and I feel the pressure of the chair and it's stopping me from falling
53:57
and um lie down in a bed and I feel heavy on the bed
54:00
and I think of that as
54:02
Ein has a beautiful ability to remove
54:04
all of these extraneous factors, including atoms.
54:11
So, let's imagine instead that you're in an elevator
54:14
and you feel heavy on your feet because the floor of the elevator is
54:18
resisting your fall, but I want to remove the elevator.
54:21
What does the elevator have to do with fundamental properties of gravity?
54:25
So, I cut the cable.
54:27
Now, I'm falling, but the elevator
54:29
is falling at the same rate as me.
54:31
So now I'm floating in the elevator.
54:34
And if this happened to me,
54:36
if I woke up in this state of falling
54:39
or floating in the elevator,
54:41
I might not know if I was in empty space
54:43
just floating um or if I was falling around the earth.
54:47
There would actually equivalent situations.
54:50
I would not be able to tell the difference.
54:52
I'm actually when I get rid of the elevator in this way by cutting
54:55
the cable, I'm actually experiencing weightlessness.
55:00
And that weightlessness is the purest experience of gravity.
55:06
And um and so this idea of falling is actually fundamental.
55:10
It's how we talk about it all the time.
55:12
The earth is in a free fall around the sun. It's actually falling.
55:17
It's not firing engines, right?
55:19
It's just it's just falling all the time, but it's just cruising so fast. So actually Yeah.
55:23
God, you said so many profound things.
55:25
So one of them is
55:27
really one of the ways to
55:30
spaceime is to be falling.
55:32
To be falling that is the purest experience of gravity.
55:35
The experience of gravity
55:37
uh unfettered uninterrupted by atoms is weightlessness. Yeah.
55:44
That observation no it has an unhappy ending.
55:46
the elevator story, right? Because of atoms.
55:49
Again, that's the fault of
55:51
the atoms in your body interacting
55:53
electromagnetically with the crust of the earth or the bottom of the building or whatever it is.
55:58
Um, but this period of freeall,
56:01
so the first observation
56:02
is that that is the purest experience of gravity.
56:04
Now, I can convince you that things follow along curved paths
56:08
because I could take uh, you know, a pen
56:11
and if I throw it,
56:12
we both know it's going to follow an arc
56:15
and it's going to follow an arc until
56:17
atoms interfere again and it hits the ground.
56:20
But while it's in freef fall
56:22
experiencing gravity at its
56:24
purest, what the Einsteinian
56:26
description would say is it is following the natural
56:30
curve in spaceime inscribed by the earth.
56:35
So the earth's mass and
56:37
shape curves the paths in space
56:40
and then those curvatures
56:43
tell you how to fall, the paths along which you should fall when you're
56:47
falling And so the Earth
56:50
has found itself on a free fall
56:53
that happens to be a closed circle,
56:55
but it's it's actually falling.
56:57
The International Space Station uses this principle all the time.
57:00
They get the space station up there
57:02
and then they turn off the engines.
57:03
Can you imagine how expensive it would be if they had to fuel that
57:06
thing at all times? Right.
57:07
They turn off the engines. They're just falling. Yeah, they're falling.
57:11
And they're not that far up.
57:12
Um there there are certainly people sometimes say, "Oh, they're so far away they don't feel gravity." Oh, absolutely.
57:18
If you stopped the space station, it's going like
57:22
17,500 m an hour, something like that.
57:25
If you were to stop that,
57:27
it would drop like a stone
57:29
right to the earth.
57:31
So, they're in a state of constant freefall
57:33
and they're falling along a curved path.
57:36
And that curved path is a result of curving spacetime
57:39
and that particular curved path's calculated in such a way that it curves onto itself.
57:43
So, you're orbiting, right?
57:45
So it has to be cruising
57:47
at a certain speed.
57:48
So once you get it at that cruising speed, you turn off the engines.
57:52
But yeah, to be able to visualize
57:54
at the beginning of the 20th century Mhm.
57:58
that not you know that
58:00
free falling in in in curved spaceime. Mhm.
58:06
Boy, the human mind is capable of things.
58:09
I mean some of that is
58:11
um constructing thought experiments
58:14
that collide with our understanding of reality.
58:18
Maybe in the collisions, in the contradictions,
58:20
you try to think of
58:22
extreme thought experiments that
58:24
that uh exacerbate that contradiction
58:27
and see like, okay, what is actually
58:29
is there another model that can incorporate this?
58:32
But to be able to do that,
58:34
I mean, it's it's kind of inspiring
58:36
because, you know, there's probably another general relativity out there. Yeah.
58:41
in all not just in physics
58:43
in all lines of work in all
58:46
scientific pursuits there's certain theories where you're like
58:50
okay I just explained
58:52
like a big elephant in the room here
58:56
that everybody just kind of didn't even
58:57
think about there could be
59:00
uh for stuff we know about in physics there could be stuff like that
59:04
for the origin of life on
59:06
everyone's like yeah okay
59:08
everyone's like in polite companies Yeah. Yeah. Yeah. Yeah. Somehow it started. Mhm. Right. Nobody knows.
59:16
I find it wild that that's so elusive. Yeah. It's it's strange.
59:20
And the lab became strange that it's so elusive.
59:22
I think it's a general relativity thing.
59:23
There's going to be some thing.
59:26
It's going to involve aliens and wormholes
59:28
and and dimensions that we don't quite understand
59:31
or some some field that's bigger than
59:34
like it's possible, maybe not.
59:37
It's possible that it has
59:39
it's a field that is
59:42
different that will feel fundamentally
59:43
different from chemistry and biology
59:45
it'll be maybe through physics again maybe the key to the origin of life
59:50
is in physics and the same there it's like a a weird neighbor is consciousness. Mhm.
59:55
It's like all right a weird neighbor. Yeah.
59:57
It's like okay so we all know
60:00
that life started on Earth somehow. Mhm. Nobody knows how. Mhm.
60:05
We all know that we're conscious.
60:08
We have a subjective experience of things.
60:10
Nobody understands that people have ideas and so on.
60:15
But it's such a dark
60:17
sort of we're entering
60:19
a dark room where a bunch of people are whispering about like, "Hey, what's in this room?"
60:23
But nobody nobody has a effing clue. Mhm.
60:26
So, and then somebody comes along with a general relativity kind of conception
60:31
where like it reconceives
60:32
everything and you're like ah
60:34
it's like a watershed moment. Yeah. Yeah.
60:38
It's there and until
60:39
we're living in the mo we're living in a time until that theory comes
60:43
along and uh it'll be obvious in retrospect,
60:45
but right now we're right.
60:48
Well, this it was obvious
60:50
to no one that spacetime
60:52
was curved, but even Newton understood something wasn't right.
60:57
So, he knew there was something missing.
61:00
And I think that's always
61:01
fascinating when we're in
61:03
a situation where we're pressure testing our own ideas.
61:07
He did something remarkable,
61:09
Newton did, with his theory of gravity.
61:11
Just understanding that the same phenomena was at work
61:14
with the earth around the sun as the apple falling from the tree. That's insane.
61:20
That's a huge leap.
61:21
Understanding that mass, inertial
61:23
mass, what makes something hard to push around
61:25
is the same thing that
61:27
feels gravity in at least in the Newtonian
61:29
picture in that simple way. Unbelievable leap. Absolutely genius.
61:35
But he didn't like
61:37
that the apple fell from the tree
61:39
even though the earth wasn't touching it.
61:41
Yeah, the action at a distance thing.
61:43
The action at a distance thing.
61:44
That is weird, too.
61:45
Well, but that is a really weird one. It's really weird.
61:49
But see, Einstein solves that.
61:51
Relativity solves that because
61:53
it says the Earth
61:56
created the curve in space.
61:58
The apple wants to fall freely along it.
62:01
The problem is the trees in the way.
62:03
The tree is the problem.
62:05
The tree is actually accelerating the apple.
62:07
It's keeping it away from its natural state of weightlessness
62:11
in a gravitational field.
62:12
And as soon as the tree lets go of it, the apple will simply
62:15
fall along the curve that exists.
62:18
I would I would love it if somebody went back to Newton's time
62:21
and told him all this.
62:22
Probably some like some like hippie would be like
62:25
it's a gravity is just the curvature in space time, man.
62:29
I wonder if he would be able to I don't think there's you know
62:32
every idea has its time.
62:35
He might not he might not even be able to load that in.
62:39
I I mean that
62:41
sometimes even the greatest geniuses
62:43
I mean you can't
62:45
like you need too out of context.
62:46
You need to be standing on the shoulders of giants
62:49
and on the shoulders of those giants and so on.
62:52
I heard that Newton used that as an unkind
62:54
remark to his competitor Hook.
62:57
Oh no, the people talk even back then. Trash talking.
63:04
This is one of the hilarious
63:05
things about humans in general, but scientists too, like these huge minds.
63:11
There's these moments in history where
63:13
you'll see this in
63:14
this in universities, but everywhere else too.
63:18
Like you have gigantic
63:19
minds obviously also coupled with
63:22
everybody has an ego
63:24
and like sometimes it's just the same soap opera
63:27
that played out amongst humans everywhere else
63:30
and so you're thinking about the biggest
63:33
cosmological objects and forces
63:35
and ideas and you're still
63:37
like jealous and right
63:40
I know your your office is bigger than my office.
63:42
I know this chair
63:44
this or or maybe
63:47
uh you got married to
63:49
this person that I was always in love with
63:51
the betrayal of something.
63:53
The one woman in the department. Yeah.
63:54
The one woman in the department. Yeah.
63:57
And it's just I mean but that is also the fuel of innovation
64:00
that jealousy that tension that's
64:03
well you know the expression I'm sure um the battles are so bitter in
64:06
academia because the stakes are so low.
64:08
That's a beautiful way to phrase it.
64:10
But also like we shouldn't forget I mean
64:13
that I love seeing that even in academia
64:16
because it's humanity the silliness
64:19
it's there is a degree to academia
64:21
where the reason you're able to think about some of these grand ideas
64:26
is because you still allow yourself to be childlike.
64:29
Oh yeah, there's a childlike nature to be ask
64:31
questions but children can also be like children children.
64:37
So like you don't I think when
64:39
um in in in a corporate context and maybe the world gets
64:43
forces you to behave you're supposed to be a certain kind of way
64:46
there's some aspects and it's a really beautiful aspect to preserve and to celebrate
64:51
in academia is like you're just
64:55
allowed to be childlike
64:57
in your curiosity and your exploration
64:59
you're just exploring asking the biggest questions
65:03
the best scientists I know
65:05
often ask the simplest questions questions.
65:07
Um they're they're really
65:10
um first of all there's probably some confidence there,
65:13
but also they're never
65:16
going to lie to themselves
65:18
that they understand something that they don't understand.
65:21
So even this idea that Newton didn't understand the apple falling
65:24
from the tree, he
65:26
had he lived another
65:28
couple hundred of years, he would have invented relativity
65:30
because he never would have lied to himself that he understood it.
65:33
he would have kept asking this very simple question.
65:36
Um, and uh, I think that there is this childlike beauty to that. Absolutely. Yeah.
65:42
Just some of the topics,
65:44
I don't know why I'm stuck to those two topics of origin of life
65:46
and consciousness, but there's I'll talk about this.
65:49
Some of the most brilliant people I know
65:51
are stuck just like with Newton and Einstein.
65:54
They're stuck on that.
65:54
This doesn't make sense.
65:56
I know a bunch of brilliant biologists,
65:58
physicists, chemists, they're thinking about the origin of life.
66:00
They're like, "This doesn't
66:02
I know how evolution works.
66:04
I know how the biological systems work.
66:06
How genetic information propagates,
66:08
but like this this part, the singularity
66:10
at the beginning doesn't make sense. We don't understand.
66:13
We can't create in the lab.
66:15
They're bothered come every single day.
66:18
They're bothered by it.
66:19
And that being bothered by that tension, by that gap in knowledge is uh
66:24
yeah, that's the catalyst.
66:26
That's the fuel catalyst for the discovery.
66:29
But the discovery yeah absolutely the discovery is going to come because somebody couldn't
66:33
sleep at night and couldn't rest.
66:37
So in that way I think black holes are a kind of
66:40
portal into some of the biggest mysteries of our universe.
66:43
So it is a it's a good terrain on which to explore these ideas.
66:47
So can can you speak about some of the
66:50
mysteries that the black holes present us with?
66:53
Yeah, I think it's important
66:55
to separate the idea that there are these astrophysical
66:59
states that become black holes
67:02
um from being synonymous with black holes because black holes are kind of this
67:06
this larger um idea
67:09
and uh they might have been made primordally
67:12
when the big bang happened and
67:15
they're there's something flawless
67:17
about black holes that makes them
67:22
um unlike anything else.
67:24
So, uh they're flawless in the sense that
67:27
you can completely understand a black hole by looking at just its charge,
67:31
electric charge, its mass, and its spin.
67:33
And every black hole with that charge, mass, and spin is
67:37
identical to every other black hole.
67:39
You can't be like, "Oh, that one's mine. I recognize it.
67:42
It has this little feature, and that's how I know it's mine." They're featureless.
67:46
They you you try to put
67:48
uh Mount Everest on a black hole and it will shake it off
67:52
in these gravitational waves.
67:53
It will radiate away
67:55
this imperfection until it settles down to be a perfect black hole again.
68:01
So there's something about them that is unlike
68:03
and another reason why I don't like to call them objects in a traditional
68:06
sense unlike anything else
68:08
in the universe that's macroscopic.
68:11
It's kind of a little bit more like a fundamental particle.
68:14
So, an electron is described by a certain short list of properties.
68:19
Charge, mass, spin, maybe some other quantum numbers.
68:22
That's what it means
68:24
to be an electron.
68:26
There's no electron that's a little bit different.
68:28
You can't recognize your electron.
68:31
They're all identical in that sense.
68:34
Um, and and so in some
68:36
very abstract way, black holes
68:38
share something in common with microscopic fundamental particles.
68:43
And so what they tell
68:45
us about the fundamental
68:47
laws of physics um can be very
68:51
profound and it's why
68:55
even theoretical physicists, mathematical
68:57
physicists, not just astronomers
68:59
who use telescopes, they
69:01
rely on the black hole
69:03
as a terrain to perform their thought experiments.
69:07
And and it's because there's something fundamental about them. Yeah.
69:11
General relativity means quantum mechanics
69:14
means singularity and sadly
69:17
heartbreakingly so it's out of reach
69:20
for experiment at this moment but
69:22
but within reach for theoretical
69:24
it's in reach for for thought experiments
69:27
for thought experiments which are quite beautiful
69:29
well on that topic I have to ask you about
69:31
the paradox the information
69:34
paradox of black holes what is it so
69:37
this is what catapulted
69:39
Hawkings fame when he was a young
69:43
researcher, he was thinking about black holes
69:47
and wanted to just add a little smidge of quantum mechanics,
69:50
just a little smidge,
69:51
you know, wasn't going for full-blown
69:53
quantum gravity, but kind of just asking, well, what if I allowed
69:59
this nothing, this vacuum,
70:01
this empty space around the event
70:03
horizon, the star is gone, there's nothing there.
70:06
What if I allowed it to possess sort of ordinary quantum properties just a
70:10
little tiny bit you know nothing
70:12
dramatic don't go crazy you know
70:15
and one of the properties of the vacuum
70:18
that um is intriguing
70:21
is this idea that you can never say the vacuum is actually completely
70:24
empty we talked about Heisenberg but you know the Heisenberg
70:27
uncertainty principle really kicked off a lot of quantum mechanical thinking
70:31
it says that you can never exactly
70:33
know a particle's position
70:35
simultaneously ly with its motion, with its momentum.
70:38
You can know one or the other pretty precisely, but not both precisely.
70:42
And the uncertainty isn't
70:44
a lack of ability that will technologically overcome. It's foundational.
70:48
So that there's in some sense when it's in a precise location, it is
70:52
fundamentally no longer in a precise motion.
70:55
And that uncertainty principle means I can't precisely
70:58
say a particle is exactly
70:59
here, but it also means I can't say it's not. Okay?
71:04
And so it led to this idea
71:06
that what do I mean by a vacuum?
71:08
Because I can't 100% precisely know.
71:13
In fact, there's not really meaningful to say that there's zero particles here.
71:17
And so what you can say, however, is you can say, well, maybe particles
71:21
kind of froth around
71:23
in this seething quantum
71:26
sea of the vacuum.
71:28
Maybe two particles come into existence and they're entangled
71:32
in such a way
71:33
that they cancel out each other's properties.
71:36
So they they have the properties of the vacuum,
71:38
you know, they don't they don't
71:40
destroy the kind of properties of the vacuum because they cancel out each other's
71:44
spin, maybe each other's charge, maybe things like that,
71:47
but they kind of froth around.
71:48
They come, they go, they come, they go
71:51
and that's what we really think is the best that empty space can do
71:55
in a quantum mechanical universe.
71:57
Now, if you add an event horizon,
71:59
which as we said is really fundamentally
72:01
what a black hole is,
72:02
that's the most important
72:05
feature of a black hole.
72:06
The event horizon, if the particles are
72:10
created slightly on either side of that event horizon,
72:14
now you have a real problem. Okay?
72:17
Now, the pair has been separated
72:20
by this event horizon.
72:22
Now, they can both fall in. That's okay.
72:24
But if one falls in and the other doesn't, it's stuck.
72:28
It can't go back into the vacuum
72:30
because now it has a charge or it has a spin
72:33
or it has something.
72:35
It's no longer the property of that vacuum it came from.
72:38
It needs its pair to disappear. Now it's stuck. It exists.
72:42
It's like you've made it real.
72:44
So in a sense, the black hole
72:46
steals one of these virtual
72:48
particles and forces the other to live.
72:53
And if it is, it'll escape
72:56
radiate out to infinity
72:58
and look like to an observer far away
73:01
that the black hole is actually radiated a particle.
73:05
Now the particle did not emanate from inside.
73:07
It came from the vacuum.
73:09
It stole it from empty space from the nothingness
73:12
that is the black hole.
73:14
Now the reason why this is very tricky
73:17
is because in the process
73:19
because of this separation
73:20
on either side of the event horizon.
73:23
The particle it absorbs
73:25
it has to do with the switching of space and time that we talked about.
73:28
But the particle it absorbs
73:29
well from the outside you might say oh it had negative momentum.
73:32
It was falling in from the inside you say well this is actually motion and time. This is energy.
73:37
It has negative energy
73:39
and it is absorbs negative energy.
73:41
Its mass goes down.
73:43
the black hole gets a little lighter
73:44
and as it continues to do this the black hole
73:48
really begins to evaporate.
73:49
It does more than just radiate. It evaporates away.
73:53
And um it's intriguing
73:56
because Hawking said, "Look, this is going to look thermal, meaning featureless.
74:01
It's going to have
74:02
no information in it.
74:04
It's going to be the most informationless
74:06
possibility you could possibly come up with when you're radiating particles.
74:09
It's just going to look like a thermal distribution of particles, like a hot body.
74:13
And the temperature is going to only tell you about the mass, which you
74:17
could tell from outside the black hole anyway.
74:19
You know the mass of the black hole from the outside.
74:21
So, it's not telling you anything about the black hole.
74:23
It's got no information about the black hole.
74:25
Now, you have a real problem.
74:26
And when he first said it, a lot of people describe
74:29
that not everyone understood
74:31
how really naughty he was being. He did.
74:36
Um, but some people who love quantum mechanics were really annoyed.
74:41
Okay, people like Lenny Suskin,
74:43
Jerard, Nobel Prize winner,
74:46
they were mad because it suggested something was fundamentally
74:49
wrong with quantum mechanics
74:51
if it was right.
74:52
Um, and the reason why it says there's something fundamentally
74:55
wrong with quantum mechanics is because quantum mechanics does not allow this.
74:58
It does not allow
75:00
quantum information to simply evaporate
75:03
away and poof out of the universe
75:06
and cease to exist.
75:07
It's a violation of something called unitarity.
75:09
But really the idea is it's the loss of quantum information that's intolerable.
75:13
Quantum mechanics was built to preserve information.
75:16
It's one of the sacred principles
75:18
as sacred as conservation of energy.
75:20
In this example, more sacred
75:22
because you can violate conservation of energy with Heisenberg's
75:24
uncertainty principle a little tiny bit.
75:28
um but so sacred
75:30
that it created what became
75:32
um coined as the black hole wars where people
75:35
were saying look general relativity is wrong
75:39
something's wrong with our thinking about the event
75:41
horizon or quantum mechanics
75:44
isn't what we think it is
75:46
but the two are not getting along anymore
75:48
and just to tell you how dramatic it is so the temperature goes down
75:52
with the mass of the black hole heavier a black hole
75:55
the cooler it is so we don't see Black holes evaporate, they're way too big.
75:59
But as they get smaller and smaller, they get hotter and hotter.
76:03
So as the black hole nears the end of this cycle of evaporating
76:06
away, it takes a very long time, much longer
76:09
than the age of the universe.
76:10
Um it will be as though the curtain, the event horizon's yanked up, like
76:14
it'll literally explode away. Just boom.
76:18
And the event horizon
76:20
in principle would be yanked up. Everything's gone.
76:23
all that information that went into the black hole, all that sacred quantum stuff gone. Poof. Okay?
76:29
Because it's not in the radiation because the radiation has no information.
76:33
And um and so
76:36
it was an incredibly productive
76:38
debate because in it are the
76:41
signs of what will make gravity and quantum mechanics play nice together.
76:46
You know, some quantum theory of gravity.
76:49
Um, whatever these clues are, and they're hard to assemble.
76:53
Uh, if you want a quantum gravity theory, it has to correctly predict the
76:56
temperature of a black hole, the entropy of a black hole.
76:59
It has to have all of these correct features.
77:01
The black hole is the place
77:03
on which we can test quantum gravity,
77:06
but it still has not been resolved.
77:08
It has not been fully resolved.
77:09
I looked up all the different ideas for the resolution.
77:12
So, there's the information loss,
77:14
which is what you referred to.
77:16
It's perhaps the simplest yet most radical resolution
77:19
is that information is truly lost.
77:21
This would mean quantum mechanics as we currently understand it specifically
77:25
unitarity is incomplete or incorrect under these extreme gravitational conditions.
77:29
I'm unhappy with that.
77:30
I'm I would not be happy with information loss.
77:32
I love that it's telling us
77:34
that there's this crisis cuz I do think it's giving us the clues
77:38
and we have to take them seriously.
77:40
For you the the gut is like
77:42
unitarity is going to be preserved preserved.
77:44
So quantum mechanics is
77:46
we have to come to the rescue as Lenny Suskin
77:49
in his book black hole war says uh his subtitle is um
77:53
my battle with Stephen Hawking to make the world safe for quantum mechanics.
77:56
Quantum mechanics I love
77:58
something to that effect.
77:59
So then from string theory one of the resolutions is called fuzzballs.
78:03
I love physicists so much.
78:04
Originating from string the theory this proposal suggests that black holes aren't singularity
78:09
surrounded by empty space and an event horizon.
78:11
Instead, they are horizonless,
78:14
complex, tangled objects, aka
78:16
fuzzballs, made of strings and brains roughly the size of the wouldbe event horizon.
78:22
There's no single point of infinite density and no
78:25
true horizon to cross.
78:26
In some sense, it says there's no interior to the black hole. Nothing ever crosses.
78:29
So, I gave you this very nice story that there's no drama.
78:32
Sometimes that's how it's described at the event horizon and you fall through and there's nothing there.
78:37
This other idea says, well,
78:39
hold on a second.
78:40
If it's really strings, as I get close to this
78:43
magnifying quality and the slowing time down near the event horizon,
78:47
it is as though I put a magnifying glass on things and now the
78:50
strings aren't so microscopic.
78:51
They kind of shmear around
78:53
and then they get caught like a tangle
78:56
around the event horizon and they just actually never fall through.
78:59
Um, I don't think that either,
79:01
but it was interesting.
79:02
So, it's just adding
79:04
a very large number of extra complex degrees of freedom.
79:08
Yeah, there are no teeny tiny marbles to fall through, but it's similar to
79:12
what we already have with quantum mechanics.
79:14
It's just giving a
79:17
really saying the interior is just not there ever. Nothing falls in.
79:20
So, the information gets out cuz it never went in in the first place. Oh, interesting.
79:22
So, there is a strong statement there.
79:24
A strong statement there. Yeah. Okay.
79:26
Soft hair challenges the classical
79:28
no hair theorem by suggesting that black holes do possess
79:31
subtle quantum quote hair.
79:33
This isn't classical hairike
79:35
charge, but very low energy quantum
79:39
excitations, soft gravitons or photons
79:42
at the event horizon that can store
79:44
information about what fell in.
79:47
Worth trying, but I also don't think that that's the case.
79:50
So the no hair
79:52
theorems are um formal
79:56
proofs that the black hole is this featureless
79:59
perfect fundamental particle that we talked about that all you can ever tell about
80:03
the black hole is its electrical
80:04
charge, its mass and its spin
80:07
and that it cannot possess other features.
80:10
It has no hair is one way of describing it and that those are
80:14
proven mathematical proofs in the context of general relativity.
80:17
So the idea is well therefore I can know nothing about what goes into the black hole.
80:20
So the information is lost.
80:22
But if they could have hair I could say that's my black hole
80:25
because it have features that I could distinguish and it could encode
80:29
the information that went in in this way.
80:31
And and the event horizon isn't so serious.
80:33
There isn't such a stark demarcation
80:35
between events inside and outside and where I can't know what happened inside or outside.
80:39
And um I don't think that's the resolution either but it was worth a try. Okay.
80:43
The pros and cons of that one.
80:45
The pros, it works
80:46
within the framework of quantum field theory in curved spaceime
80:49
potentially requiring less radical modifications
80:51
than fuzballs or information loss.
80:54
Recent work by Hawking Perry Strongly revitalized this idea.
80:58
The cons is that the precise mechanism by which information is encoded and transferred
81:02
to the radiation is still debated and technically challenging to work out fully and
81:06
indeed it needs to store a vast amount of information. Okay, another one.
81:12
This is a weird one.
81:13
boy is uh ER equals EPR.
81:16
This is probably it though. Oh boy.
81:19
So ER equals EPR is Einstein Rosen Bridge equals Einstein
81:23
Podski Rosen Bridge posits a deep connection between
81:27
quantum entanglement and space-time geometry.
81:30
Uh specifically Einstein Rosen
81:33
bridge commonly known as wormholes.
81:35
It suggests that entangled
81:37
particles are connected by a non-traversible wormhole.
81:40
are tiny wormholes connecting.
81:43
Okay, I I can say that this is not
81:47
uh a situation we can follow the chalk.
81:49
We can't start at the beginning and calculate to the end.
81:52
So, it's um it's still a conjecture.
81:55
I think it's very profound though.
81:57
Um I kind of imagine
81:59
Juan Maldsina who's part of this with Lenny Suskin,
82:02
they were kind of like h it's like er equals EPR.
82:05
They couldn't even formulate it properly.
82:07
It was like an intuition that they had kind of
82:09
landed on and now are trying to formalize.
82:12
But to take a step back,
82:14
one way of thinking about ER equals EPR,
82:17
you have to talk about holography first.
82:19
And holography both Juan Maldina
82:22
really formalized it, Lenny Suskin suggested it.
82:24
The idea of a black hole hologram is that all of the information
82:28
in the black hole
82:29
whatever it is whatever
82:30
you know entropy as a measure of information
82:33
uh whatever the entropy of the black hole is which is telling you how
82:35
much information is hidden in there how much information
82:38
you don't have direct access to in some sense
82:41
um is completely encoded in the area
82:44
of the black hole
82:45
meaning as the area grows the entropy grows
82:47
it does not grow as the volume
82:50
this actually turns out to be really
82:53
really important If I tried to pack a lot of information into a volume,
82:58
more information than I could pack, let's say, on the surface of a black
83:01
hole, I would simply make a black hole
83:04
and I would find out, oh, I can't
83:06
have more information than I can fit on the surface.
83:09
So, Lenny coined this a hologram.
83:11
People who take it very seriously say, well, again, maybe the interior of the
83:15
black hole just doesn't exist.
83:16
It's a holographic projection
83:18
of this two-dimensional surface.
83:19
In fact, maybe I should take it all the way and say, so are we. Mhm.
83:23
The whole universe is a holographic
83:25
projection of a lower dimensional surface, right?
83:28
And so people have struggled,
83:29
nobody's really landed it
83:31
to find a universe version of it.
83:33
Oh, maybe there's a boundary to the universe where all the information is encoded
83:38
and this entire three-dimensional
83:40
reality that's so compelling and so convincing is actually
83:43
just a holographic projection.
83:45
Juan Maldesina did something absolutely brilliant.
83:48
It's the most highly cited paper in the history of physics.
83:51
It was published in the late '9s.
83:53
Uh it has a very opaque title that would not lead you to believe
83:57
it's as revelatory as it is.
84:00
But he was able to show that a universe
84:03
like in a box
84:04
with gravity in it.
84:06
It's not the same universe we observe. Doesn't matter.
84:08
It's just a hypothetical
84:09
called an anti-itter space.
84:10
It's a universe in a box. It has gravity.
84:12
It has black holes.
84:12
It has everything gravity can do in it.
84:15
on its boundary is
84:18
a a theory with no gravity,
84:21
a universe that can be described with no gravity at all.
84:23
So, no black holes
84:25
and no information loss problem. And they're equivalent.
84:30
That the interior universe in a box is a holographic
84:35
projection of this quantum mechanics on the boundary.
84:39
pure quantum mechanics, purely unitary,
84:42
no loss of information.
84:43
None of this stuff could possibly be true.
84:46
There can't be loss of
84:47
information if this dictionary really works.
84:50
If the interior is a hologram,
84:53
a projection of the boundary.
84:56
I know that's a lot. Yeah.
84:59
So, there's a there's some mathematics there.
85:02
There's physics and then there's trying to conceal what that actually means practically for for us. Mhm.
85:07
Well, what it would mean for us
85:10
is that information can't be lost even if we don't know how to
85:14
show it in the description
85:15
in which there are black holes.
85:17
It means it can't possibly be lost because it's
85:20
equivalent to this description
85:24
with no gravity in it at all.
85:25
No event horizons, no black holes, just quantum mechanics.
85:29
So it really strongly
85:31
suggested that that quantum mechanics
85:34
was going to win
85:36
in this battle, but it didn't show exactly how it was going to win.
85:40
So then comes ER equals EPR.
85:42
A visual way to imagine what this means.
85:44
So ER has to do with little wormholes.
85:48
EPR Einstein Podski Rosen has to do with quantum entanglement.
85:52
The idea was, well, maybe the stuff that's interior
85:56
to the black hole
85:57
is quantum entangled, like EPR,
86:01
quantum entangled with the Hawking radiation
86:04
outside the black hole that's escaping.
86:06
And that quantum entanglement
86:08
is what allows you to extract the information
86:12
because it's not actually
86:14
physically moving from the interior to the exterior.
86:17
It's it's just subtle quantum entanglement.
86:20
And in fact, I can kind of think
86:21
of the entire black hole.
86:25
If I look at it, it looks like a solid shadow cast on the
86:28
sky, some region of spaceime.
86:30
If I look at it very closely,
86:32
I will see, oh no, it's actually
86:34
sewn from these quantum wormholes, like embroidered.
86:38
And so when I get up close,
86:40
it's almost as though
86:42
the event horizon isn't the fundamental
86:46
uh feature on the spacetime.
86:48
The fundamental feature is the quantum
86:50
entanglement embroidering the event horizon.
86:54
The embroidering is is just tiny wormholes.
86:56
So the quantum entanglement
86:59
is when two particles
87:00
are connected at arbitrary
87:03
distances and they're connected by a wormhole.
87:06
And in this case they would be connected by a wormhole. Mhm.
87:09
So the reason why that's helpful, it helps you connect the interior to the
87:13
exterior without trying to pass through the horizon.
87:18
The cons of this theory
87:20
is highly conceptual and abstract.
87:23
The exact mechanism for information
87:25
retrieval via these non-traversible
87:28
war polls is not fully understood.
87:30
Primarily explored in theoretical toy models.
87:34
Whoa, Gemini going hard.
87:37
Uh theoretical toy models like the anti-deitter
87:40
spaceime rather than realistic black holes. True.
87:46
We do what we can do. in baby steps.
87:49
So the uh another idea to resolve
87:51
the information paradox is
87:55
proposed by Mary Marov
87:58
Pchinski and Sully amps.
88:01
This is a more drastic scenario
88:02
arising from analyzing the entanglement
88:04
requirements of Hawking radiation
88:07
to preserve unitarity and avoid information loss.
88:10
They argued that the entanglement
88:12
structure requires the event horizon not to be smooth,
88:16
not to be the smooth unremarkable
88:18
place predicted by general relativity, the equivalence principle.
88:22
Instead, it must be a highly energetic
88:24
region, a quote firewall
88:27
that incinerates anything attempting to cross it. Okay.
88:30
So, yeah, that's a nice solution.
88:32
Just destroy everything that crosses them.
88:35
Um, do you find this at all a convincing
88:37
resolution to the information?
88:39
would say the firewall
88:40
papers were fascinating and
88:43
were very provocative and very important in making progress.
88:46
I don't even think the authors of those papers thought firewalls were real.
88:50
I think they were saying, "Look, we've been brushing too much under the rug."
88:54
And if you look at the evaporation
88:56
process, it's even worse
88:59
than what you thought previously.
89:01
It's so bad that I can't get away with some of these prior solutions
89:04
that I thought I could get away with.
89:06
Um there was a kind of duality
89:08
idea or a complimentarity
89:09
idea that oh well maybe one person thinks they fell in one person
89:13
thinks they never fell in and that's okay
89:15
you know no big deal.
89:17
They sort of exposed
89:18
flaws in these kind of approaches
89:20
and it actually reinvigorated
89:23
the campaign to find a solution.
89:25
Um so it stopped it from stalling.
89:27
I don't think anyone really believes that the event horizon,
89:31
at the event horizon, you'll find a firewall.
89:33
But it did lead to
89:34
things like the entangled wormholes
89:37
embroidering a black hole, which is
89:40
um was born out of an attempt
89:42
to um address the concerns that amps raised.
89:48
So it did lead to progress.
89:49
So for you, the resolution
89:51
would uh I'm going back to the vacuum.
89:54
You're going back, the empty space,
89:55
the beautiful event horizon.
89:57
Y I'll give up
89:59
um I'll give up locality
90:02
meaning that I will allow things to be
90:06
non-locally by a wormhole.
90:08
So that is the weirdest
90:09
thing you're willing to
90:11
allow for which is
90:12
arbitrary distance connection of particles through a wormhole.
90:17
But quantum mechanics must be preserved.
90:18
I'll entertain pretty weird
90:20
things but I think that's the one that sounds promising.
90:25
The implications are so
90:26
dramatic because this is why you start to hear things like, "Wait a minute.
90:30
If the event horizon
90:32
only exists when it's sewn out of these quantum threads, does that mean that
90:36
gravity is fundamentally quantum mechanics?"
90:38
Not that gravity and quantum mechanics get along and I have a quantum gravity
90:43
theory and I now know how to quantize gravity.
90:44
Actually, something much more dramatic.
90:46
Gravity is just kind of
90:48
emerging from this quantum
90:50
description that gravity isn't fundamental.
90:55
And what is the only thing that we have when we go rock bottom,
90:59
when we go deeper and deeper, smaller and smaller is quantum mechanics.
91:03
So all of this like spacetime looks nice and smooth and continuous.
91:07
But if I look at the quantum realm,
91:09
I'll see everything sewn together out of quantum
91:12
threads and that spacetime
91:14
is not a smooth
91:16
continuum all the way down.
91:18
Now people already thought that, but they thought it kind of came in chunks of spaceime. instead.
91:23
Maybe it's just quantum mechanics all the way down. Quantum threads.
91:27
So these entangled particles
91:30
connected by So that's what that's how you would how would you even visualize
91:35
a black hole in that way.
91:37
So it's all um
91:41
I mean it's all sort of from our perspective in terms of detecting things
91:45
the light goes going in
91:46
it's all still the same.
91:48
But when you zoom in a lot, when you zoom in a lot to
91:50
the quantum mechanical scale at which
91:53
you're seeing the Hawking
91:54
radiation, you would be noticing that there's
91:57
there's some entanglement between the radiation
92:00
that I could not explain
92:01
before and the interior of the black hole.
92:04
So, it's now no longer a
92:07
perfectly thermal spectrum with no features that only depends on the mass.
92:11
it actually has a way
92:13
to have an imprint of the information interior to the black hole
92:18
in the particles that um escape.
92:21
And so now in principle
92:24
I could sit there for a very long time.
92:26
It might take longer than the age of the universe and collect all the
92:28
Hawking radiation and see that it actually had details in it that are going
92:32
to explain to me
92:34
what was interior to the black hole.
92:36
So the information is no longer lost.
92:38
So yeah, so information is not being destroyed.
92:40
So in theory, you should be able to get information.
92:42
Now I can't do that anymore than I can
92:44
recover the words on that piece of paper once it's been burnt.
92:48
But that's a practical limitation,
92:50
not a fundamental one.
92:51
It's just too hard.
92:52
But when I burn a piece of paper, technically the information
92:55
is all there somewhere.
92:56
It's in the smoke.
92:57
It's in the currents.
92:58
It's in the molecules.
92:59
It's in the ink molecules.
93:01
But in principle, if I
93:03
had took the age of the universe, I could probably reconstru I should be
93:07
able to in principle reconstruct the piece of paper and all the words on it.
93:12
Do you think a theory of everything that unifies
93:15
general relativity, quantum mechanics is possible?
93:17
So, we're like uh skirting around it.
93:20
Yeah, we're skirting around it.
93:21
I think that this is the way to find that out.
93:24
It's going to be on the train of black holes that we figure out if that's possible.
93:29
Um I think that this is suggesting that there might not be
93:33
a theory of quantum gravity
93:34
that gravity will emerge at a macroscopic
93:37
level out of quantum phenomena.
93:40
Now we don't know how to do that yet
93:42
but these are all hints emerge.
93:45
So a lot of the mathematics of anything that emerges from complex system is
93:49
very difficult to the transition is very difficult
93:52
right so if that's the case
93:54
there might not be a simple clean
93:56
equation that that connects everything
93:59
there are examples of emerging phenomena which are very simple and clean like I
94:02
can just take electromagnetic
94:04
scattering just um law of physics where particles scatter
94:08
just by electromagnetically and I have a lot of them and I have a
94:11
lot of them in this room and they come to some average
94:14
well I call that temperature, right?
94:17
And that one number,
94:18
the fact that there's one number describing
94:20
all of these gazillions
94:22
of particles is an emergent quantity.
94:26
It's there's no particle that carries around this fundamental
94:29
property called temperature, right?
94:31
Um it emerges from the collective behavior of tons and tons of particles.
94:34
In some sense, temperature is not a fundamental quantity.
94:37
It's not a fundamental law of nature, right?
94:40
It's just what happens
94:43
from the collective behavior.
94:45
And that's what we'd be saying.
94:47
We'd be "Oh, this this emerges
94:50
from the collective behavior of lots and lots and lots of um quantum interactions."
94:56
So when do you think
94:58
we would have some breakthroughs
95:00
on uh the path towards
95:03
theory of everything showing that it's
95:05
possible or impossible all that kind of stuff?
95:07
If you look at the 21st century, say you're
95:10
move 100 years into the future and looking back,
95:13
when do you think the breakthroughs will come?
95:15
So I'll give you some hard problems.
95:17
I guess my question is how hard is this problem?
95:19
Your like what does your gut say?
95:21
Because you know finding the origin of life,
95:24
figuring out consciousness, solving some of the major diseases.
95:27
Then there's the theory of everything, understanding
95:30
this, resolving the information paradox.
95:33
So these puzzles that are before us as a human civilization,
95:37
physics, this feels like
95:40
really one of the big ones.
95:41
Of course, there could be other breakthroughs
95:43
in physics that don't solve this.
95:48
Yeah, we could discover dark matter, dark energy.
95:50
We could discover extra spatial dimensions.
95:53
We could discover that those three things are linked,
95:55
that there's like a dark sector to the universe that's hiding in these extra dimensions.
95:59
And that's something that I love to work on.
96:02
I think is really fascinating.
96:04
All of those would also be clues about this question,
96:07
but they wouldn't solve this problem.
96:11
Um I think there I think it's impossible to predict.
96:14
There has been real progress
96:15
and the progress as we've said comes from
96:18
the childlike curiosity of saying,
96:20
"Well, I don't actually understand this.
96:22
I'm going to keep leaning on it because I don't understand it."
96:25
And then suddenly you realize nobody really understood it.
96:29
Um so I don't I don't know.
96:30
Do I think it's a harder problem
96:32
than the problem of the origin of life?
96:34
I think it's technically a harder problem.
96:37
Um, but I don't know.
96:38
Maybe maybe the breakthrough will come.
96:41
So, when you mentioned
96:43
discovering extra dimensions, what do you mean?
96:48
What could that possibly mean?
96:52
Well, we we know that there are three spatial dimensions.
96:56
We like to talk about time as a dimension.
96:58
We can argue about whether that's the right thing to do,
97:01
but we don't know why there are only three.
97:04
It very well could be that there are extra spatial dimensions that there's like
97:08
a little origami of these tightly rolled up dimensions.
97:13
Um, not all of them, not all the models require that they're small, but most do.
97:18
String theory requires extra dimensions to make sense.
97:21
But even if you
97:23
uh feel very um
97:27
hostile towards string theory, there are there are lots of reasons to consider
97:30
the viability of extra dimensions.
97:33
And we think that they can trap
97:36
little quantum energies in such a way that
97:40
might align with the dark energy.
97:42
And the numerology is not perfect.
97:44
It's a little bit subtle.
97:45
it's hard to stabilize them.
97:48
Um, it's possible that there are these kind of quantum exitations
97:52
that look a lot like dark matter.
97:55
It's kind of an interesting
97:57
idea that in the Big Bang, the universe was born with lots of these dimensions.
98:02
They were all kind of wrapped up in the early universe.
98:05
And what we're really trying to understand
98:07
is why did three get so
98:10
big and and why did the others stay so small?
98:14
Is it possible to have some kind of natural selection of dimensions kind of situation?
98:18
There is actually and people have worked on that.
98:21
Is there a reason why
98:23
it's uh easier to unravel three?
98:27
Some people think about strings and brains wrapping up in the extra dimensions causing
98:31
a kind of constriction
98:32
but preferentially loosening up in three.
98:35
Um, sometimes we look at exactly models like that which have to do with
98:39
the origami uh being resistant
98:42
to change in a certain way that only allows three to unravel
98:46
and keeps the others really taught.
98:49
But then there are other ideas that we're actually living on a three-dimensional
98:53
membrane that moves through these higher dimensions.
98:57
And so the reason we don't notice them isn't because they're small.
98:59
Maybe they're not small at all.
99:01
But it's because we're stuck to this membrane.
99:03
So, we're unaware of these extra directions.
99:06
Is it possible that there's other
99:08
intelligent alien civilizations out there that are
99:12
operating on a different membrane?
99:15
Is is this a bit of an out there question?
99:17
But I I ask it more kind of seriously
99:19
like is it possible do you think from a physics perspective
99:22
to exist on a
99:25
slice of uh what the universe is capable of?
99:29
I think it is
99:32
certainly mathematically possible on paper
99:35
to imagine a higher dimensional universe
99:38
with more than one
99:41
And if things are mathematically
99:44
possible, I often wonder if nature will try it out. Yeah.
99:47
Um, which is how people get into the
99:50
the strange territory of talking about a multiverse.
99:53
Because if you start to say
99:55
one of the aspirations
99:56
was in the same way that we identified
99:58
the law of electroeak
100:00
theory of matter that it was a single
100:04
description and exactly um
100:07
landed on the description that matched observations.
100:09
People were hoping the same thing would happen
100:12
for a kind of theory that also incorporated gravity.
100:16
there would be this one beautiful law, but instead they got a proliferation,
100:20
all of which did okay or did equally badly.
100:23
Um, they suddenly had trouble finding
100:26
not only finding a single one, but sort of
100:29
that would just beg a new question, which is, well, why that one?
100:33
And if if nature
100:35
can do something, won't she do anything she can try?
100:39
And so maybe we really are just one example
100:43
in an infinite sea of possible
100:45
universes with slightly different laws of physics.
100:48
So if I can do some of these things
100:50
on paper, like imagine
100:52
a higher dimensional space in which I'm confined to a brain and there's another
100:56
brain or maybe a whole array of them.
100:59
Maybe nature's tried that out somewhere.
101:01
Maybe that's been tried out here.
101:03
Um, and then yes, is it possible that there's life and civilizations
101:08
on those other brains?
101:09
Yeah, but we can't communicate with them.
101:11
They'd be like in a shadow space.
101:14
Can you seriously say we can't communicate with them? No, that's fair.
101:18
I there I'm limited in my communication
101:20
cuz I'm glued to the brain.
101:21
But some things can move.
101:22
We call the bulk through the bulk.
101:25
Gravity, for instance, a gravitational wave.
101:27
So I could design a gravitational
101:30
communicator communication system and I could send gravitational
101:34
waves through the bulk
101:35
and how SETI is doing with light into space.
101:40
I could um send signals into the bulk. Nice.
101:43
Telling them where we are and what we do and of course singing songs.
101:47
Sending gravitational waves is very expensive.
101:50
We don't know how to very expensive very hard to localize.
101:52
They tend to be long wavelength
101:54
and very hard to do.
101:56
lot of energy moving around. A lot of energy.
101:58
Uh, so is it possible that the membranes are quote unquote hairy in other
102:02
ways, like some kind of weird?
102:04
It is possible that there's other things that live in the bulk.
102:07
I mean, last night I was calculating
102:09
away looking at something that lives in the bulk.
102:13
Okay, this is fascinating.
102:14
So, I mean, okay, can we take a little bit more seriously about the
102:17
the whole when I look out there at the stars? Mhm.
102:23
I from a basic
102:25
intuition cannot possibly imagine
102:28
there's not just alien civilizations everywhere. Yeah.
102:33
Life is so damn good.
102:35
Like you said, nature tries stuff out. Yeah. Nature's an experimentter.
102:39
And I just can't
102:42
just basic sort of
102:45
uh observation life uh you said somewhere that you like extreop
102:50
files life just figures
102:53
out it just finds a way to survive.
102:56
Now there could be something magical about the origin of life the first spark
103:00
but like I can't even see that it's over and over and over.
103:03
I bet actually once once the story is fully told and figured out,
103:07
life originated on Earth almost right away and did that.
103:10
So like billions of
103:12
times uh in multiple places just over and over and over and over.
103:16
Uh that seems to be the thing
103:19
that just whatever is the life force
103:22
behind this whole thing
103:24
seems to uh seems to create life seems to be a creator of different sorts. Yeah.
103:31
the the the very
103:32
from the very original primordial soup of things.
103:35
It just creates stuff.
103:36
So, I just can't imagine,
103:38
but we don't see the aliens. So, right. Yeah.
103:40
We don't even have to go to something as crazy as extra dimensions and
103:43
brain worlds and all of that.
103:45
What's happening right now in the past 30 years in
103:48
astronomy looking at real objects
103:51
is that the number of planets,
103:53
exoplanets outside our solar system has absolutely proliferated.
103:57
There are probably more planets in the Milky Way galaxy than there are stars.
104:02
And now we have a real quandry.
104:04
Not I don't think it's quandry.
104:06
I think it's really exciting. It becomes impossible.
104:08
What you just said, I totally agree with.
104:10
It becomes impossible to imagine
104:12
that life was not sparked
104:14
somewhere else in our Milky Way galaxy and maybe even in our local neighborhood
104:19
of the Milky Way galaxy, maybe within a few hundred lighty years of the
104:22
Milky of of of our solar system.
104:24
So my my my gut says
104:26
like some crazy amount
104:28
of uh solar systems
104:31
have life bacterial life somewhere
104:35
at some point in their history
104:38
had some bacterial type of life
104:41
something like bacterial maybe it's totally different kinds of life so then I'm just
104:45
facing with a question it's like why have we not
104:48
clearly seen alien civilizations
104:52
and there the answer
104:53
I I just I I don't
104:55
find any great filter answer convincing.
105:00
There's just no way I can imagine an advanced alien civilization
105:03
not avoiding its own destruction.
105:05
I can see a lot of them getting into trouble.
105:07
I could see how we humans
105:09
are really like 50/50 here.
105:11
Well, isn't that kind of appalling?
105:13
I mean, just take that statement.
105:14
We've only been around for like
105:16
I mean couple hundred thousand years tops, you know?
105:20
Um, that is not very long and we're at a 50/50.
105:24
I mean, that's unbelievable.
105:26
I mean, it's indisputable
105:27
that we have created the means
105:30
at least potentially for our own destruction.
105:33
Will we learn from our mistakes?
105:34
Will we avert course and save ourselves?
105:38
One hopes so, right?
105:39
But but even the concept that it's conceivable
105:43
whales have not invented a way to kill
105:46
themselves to wipe out all whales
105:48
and earth and life on earth.
105:51
That's one way to see it.
105:52
But I I actually see it as a feature not a bug when you
105:54
look at the entirety
105:55
of the universe because
105:57
uh it does seem that the mechanism of
106:02
evolution constantly creates you want to operate on the verge of destruction.
106:08
It seems like I mean the predator and prey dynamic is really
106:12
effective at creating a at
106:15
accelerating evolution and development.
106:17
It seems like us being able to destroy ourselves is a really powerful
106:21
way to give us a chance to really get our together and to flourish
106:25
to develop to innovate
106:27
to to uh go out amongst the stars or 50/50 destroy ourselves.
106:31
But like, which I think me as a human is a horrible thing.
106:35
But if there's a lot of other alien civilizations,
106:37
that's a pretty cool thing.
106:38
You want to give everybody nuclear weapons,
106:42
half of them will figure it out, half of them won't.
106:44
And the ones that give everyone all these civilizations,
106:46
all these civilizations, and then the ones that figure it out will figure out
106:50
some incredible technologies about how to expand, how to develop, and all that kind of stuff, right?
106:54
You could use a kind of evolutionary
106:56
Darwinian natural selection on that where in
107:00
survival isn't just in a harsh
107:03
naturally induced climate change but is because of a nuclear holocaust
107:06
and so but and then and then something will will
107:09
be created that is now impervious
107:12
to that that now knows how to survive. Yep. Exactly.
107:14
So why haven't we seen them? Right.
107:16
Well because that's a pretty big bar.
107:19
So if you look at the just to say
107:21
for a comparison dinosaurs
107:23
you know 250 years
107:26
I mean maybe not very bright
107:31
um didn't invent but fire
107:32
didn't write sonnets they didn't contemplate the origin of the universe but they
107:37
they and um in a benign
107:42
situation without confronting their own demise at their own hands
107:46
pause um so It's just a sheer numbers game.
107:50
That's a long time, 250 million years.
107:53
I do think though that life can flourish without wanting to manipulate its environment.
107:59
And that we do see
108:02
many examples of species on Earth that are very longived, very very longived.
108:08
Um, and have very different states of consciousness.
108:11
They have the jellyfish
108:14
does not even have a localized brain.
108:16
Um, I don't think they have a heart or blood.
108:18
I mean, they're really different from us. Okay?
108:21
And that's what I think we have to start thinking about when we think about aliens.
108:24
Those, uh, species have lived for a very, very long time.
108:28
They even show some evidence of immortality.
108:30
You can wound one
108:32
badly, and there are certain jellyfish that will go back
108:35
into a kind of
108:37
pre-state and start over.
108:39
So, I think we're very attached to imagining
108:42
creatures like us that manipulate technology.
108:46
Um, and um, and I think we have to be way more
108:51
uh, if we're going to really take seriously life in the universe. Yeah.
108:54
They might not prioritize conquest and expansion. Mhm.
108:58
They might not be violent.
109:01
They might not be violent like us humans.
109:04
They might be solitary.
109:05
They might not be social.
109:06
They might not move in groups.
109:08
They might not want to leave records.
109:10
Um, uh, they might again not have a localized
109:14
brain or have a completely different kind of nervous system.
109:17
I think all we can say about life is it has something to do
109:20
with moving electrons around
109:23
and um, like neurologically
109:26
we move electrons through our nervous system.
109:28
Our brain has electrical configurations.
109:31
We metabolize food and that has to do with
109:35
uh getting energy, electrical
109:38
energy in some sense out of
109:40
um what we're eating.
109:41
You we organisms on the earth that can eat rocks. It's quite amazing. Minerals.
109:45
I mean, talk about extreophiles.
109:47
They can metabolize things that I would have thought
109:49
uh were impossible to metabolize.
109:51
And so, again, I think
109:53
we we have to kind of open our minds to how strange that could
109:57
be um and how different from us.
110:00
And we are the only example
110:02
even here on earth that
110:04
that does manipulate its environment in that extreme way.
110:09
I mean can you think of life
110:10
as cuz you said
110:13
electrons is is there some degree
110:16
of information processing required?
110:18
So like it does something
110:20
interesting in quotes with information.
110:24
I think there are arguments like that.
110:26
um how entropy is changing from the beginning of the universe to today.
110:31
How life uh lowers
110:33
entropy by organizing things but it costs more as a whole system.
110:38
So the whole entropy of the whole system goes up.
110:41
But um but of course I
110:43
I organized things today and reduced the entropy
110:47
of certain things in order to get up and get here.
110:50
um and even having this conversation
110:52
organizing thoughts um out of the cloud of information
110:56
but it comes at the cost of the entire system increasing
111:00
um entropy so I do think there's probably a very interesting way to talk
111:04
about life in this way
111:05
I'm sure somebody has
111:07
yeah yeah it creates local pockets of low entropy and
111:10
then the kind of mechanism the kind of object the kind of
111:14
life form that could do that probably can take arbitrary
111:18
forms and you could think now if you you reduce it all to information.
111:21
Now you can start to think about physics
111:24
and in the realm of physics with with the multiverse and all this kind of stuff.
111:29
You could start to think about okay how do I
111:31
detect those pockets of low entropy? Mhm. Yeah.
111:35
I mean people have tried to make arguments like that like can I look
111:39
for entropic arguments that
111:43
might suggest we've done this before?
111:47
the big bang has happened before.
111:50
So, is it possible that there's some kind of physics
111:53
explanation why we haven't seen the aliens?
111:55
Like we said, membranes,
111:57
I don't think membranes is going to explain why we don't see them in the Milky Way.
112:00
I think that is just a problem we're stuck with.
112:03
whether or not there are extra dimensions
112:04
or whether or not there's life in another membrane.
112:08
Um I think we know that even just in our galaxy which is a
112:12
very small part of the universe
112:14
um 300 billion stars something like that
112:18
a whole kind of variety of possibilities
112:20
to be explored by nature
112:22
in the same way that we're describing.
112:24
And I think you're absolutely right when when
112:26
life was kicked off first sparked
112:28
here on Earth it was voracious.
112:31
Now, it took a really long time though to get to multisellularity.
112:35
I think that's interesting. That's weird. It's weird.
112:38
It took a really
112:40
really long time to multisellular.
112:42
But it it did not take long just to start. Yeah.
112:47
What do you think is the hardest
112:49
thing on the chain of leaps
112:52
that got to humans?
112:54
I would say multisellularity,
112:57
which is strictly an energy problem.
113:00
I I think again it's just like can
113:03
electrons flow the right way?
113:06
Uh and is it energetically
113:09
favorable for multisellularity to exist?
113:14
Because if it's energetically
113:15
expensive, it's not going to succeed.
113:18
And if it's energetically
113:19
favorable, it's going to take off.
113:20
It's really just and that's why I also think that going from
113:27
um to animate is probably gray.
113:33
Like the transition is gray.
113:35
At what point we call something fully alive?
113:39
Famously, it's hard to make a nice list of
113:43
bullet points that need to be met in order to declare something alive.
113:47
Is a virus alive?
113:48
I mean, I don't know.
113:49
Was a PON alive?
113:51
Those are they seem to do some things, but they
113:54
kind of rely on stealing
113:55
other DNA and replicating.
113:57
And I don't know.
113:58
I guess they're not alive.
114:00
But I mean, the point is is that it really at the end of
114:02
the day, I really think it's just, you asked if it's just physics.
114:04
I mean, I think it's just this
114:06
these rules of energetics.
114:08
And the gray area between the non-living
114:11
and the living is way simpler just on Earth.
114:14
And you said it's already complicated on Earth, but it's probably even more complicated
114:17
elsewhere where the chemistry could be anything.
114:20
Carbon is really cool
114:21
and really useful because it finds a lot. It's nice.
114:25
It finds a lot of ways to combine with other things. And that's complexity.
114:28
And complexity is the kind of thing you need for life.
114:32
You can't have a very simple linear chain and expect to get life.
114:36
But I don't know, maybe sulfur would do. Okay. Okay.
114:39
As we get progressively
114:40
towards crazier and crazier ideas.
114:42
So, we talked about these microscopic
114:44
wormholes, which you know,
114:46
my mind is still
114:48
blown away by that.
114:49
But if we talk about a little bit more seriously about
114:52
wormholes in general, also called the Einstein
114:56
rose and bridges, to what degree do you think they're actually
115:00
possible as a thing to
115:02
study, creeping towards the
115:06
possibility, maybe centuries from now,
115:09
of engineering ways of using them, of creating wormholes
115:14
and using them for transportation of humanlike organisms.
115:18
I think wormholes are a perfectly valid construction to consider.
115:23
They're just they're just a curve in spaceime.
115:26
Um the topologically, which has to do with the connectedness
115:30
of the space, is a little tricky because we know that
115:33
Einstein's description is completely in terms of local curves and distortions, expansion, contraction.
115:39
But it doesn't say anything about the global connectedness
115:42
of the space because he knew that it could be globally
115:45
connected on the largest scales.
115:48
This kind of origami
115:49
that we're talking about that you could travel in a straight line
115:52
through the universe, leave our galaxy behind,
115:55
watch the Virgo cluster
115:57
drift behind us and travel in a straight line as possible and find ourselves
116:00
coming back again to the Virgo cluster and eventually
116:03
the Milky Way and eventually the Earth that we could find ourselves on a connected compact spaceime.
116:08
And so um there's
116:12
something we know for sure
116:14
something beyond Einstein's theory that has to explain that to us.
116:18
Now wormholes are a little funky because they're topological.
116:21
You know they create these handles and holes in these sneaky
116:24
by topological I mean these connected
116:27
spaces and yes it's like Swiss cheese or something.
116:30
like Swiss cheese and they right and they so I could have
116:33
you know I I could have two like flat sheets
116:36
that are connected by a wormhole but then wrap around on the largest scale
116:40
you know all this
116:41
cool stuff um there's nothing wrong with it
116:44
as far as I can see there's nothing
116:46
abusive towards the laws
116:48
about a wormhole but we can reverse engineer you we were saying oh look
116:52
if I know how matter and energy are distributed
116:55
I can predict how spaceime is curved I can reverse engineer
116:58
I can say I want to build a curved spaceime like a wormhole.
117:02
What matter and energy do I need to do that?
117:04
It's a simple process and it's kind of thing Hip Thorne
117:08
uh worked on very imaginative creative person.
117:11
Um and the problem was that he said, "Oh,
117:15
you know, here's the bummer.
117:17
The matter and energy you need
117:19
doesn't seem to be like anything we've ever seen before.
117:21
It has to have like negative energy."
117:23
And that's that's not great.
117:26
Um there are some conjectures
117:28
that we shouldn't allow things
117:30
that have that kind of a property that have negative energies.
117:33
U only things that have positive energies
117:36
are going to be stable and longived.
117:40
But we actually know of quantum examples of negative energy.
117:43
So it's not that crazy.
117:44
There's something called the Casmir effect.
117:46
You have two metal plates and
117:48
put them really close together.
117:49
You can see this kind of quantum
117:51
fluctuation between the plates.
117:52
It's called a kasmir energy.
117:54
And that can have a negative energy
117:56
can actually um cause the place to attract or repel depending on how they're configured.
118:02
And and so you could kind of imagine
118:04
doing something like that, like having
118:07
wormholes propped up by these kinds of quantum energies.
118:12
And people have thought of imaginative
118:14
configurations to try to keep them propped up.
118:17
Is it are we at the point of me saying, "Oh, this is an engineering problem."
118:21
I'm not saying that quite yet,
118:23
but it's certainly plausible. Yeah.
118:26
So, you have to get a lot of this kind of weird matter.
118:30
You need a lot of this weird matter to send a person through, right?
118:34
That's going to be really telling.
118:35
So, I'm not saying we're it's simply an engineering problem,
118:38
but it's all within the realm of plausible physics.
118:42
I think I I think that's super interesting.
118:45
I think it's obviously intricately
118:46
deeply connected to black holes.
118:48
H is is it fair to think of wormholes as just two black holes
118:52
that are connected somehow?
118:53
Is that people have looked at that?
118:55
They tend to be non-traversible wormholes.
118:57
They're they're not trying to prop them open.
119:00
Um but yeah, I mean
119:02
some of this er equals EPR, quantum
119:06
entanglement, they're trying to connect black holes.
119:10
Um you know, it's it's really cool.
119:13
It's not quite again it's not quite following the chalk.
119:15
And by that I mean we can't exactly start at a concrete place
119:19
calculate all the way to the end yet.
119:21
So if I may read off some of the ideas that kept throwing his
119:24
head about how to artificially construct wormholes.
119:27
So the first method involves quantum mechanics and the concept of quantum foam.
119:31
And this is the thing we've been talking about.
119:33
Now to create a wormhole
119:34
these tiny wormholes would need to be enlarged
119:37
and stabilized to be useful for travel.
119:40
But the exact method of doing this remains entirely theoretical.
119:44
No You think so?
119:45
So this these tiny wormholes
119:47
that are basically um
119:50
for the quantum entanglement
119:51
of the particles somehow enlarged.
119:55
Man, playing with the topology of the Swiss cheese
119:58
would be so interesting.
120:01
Even to get a hint. Mhm.
120:03
That would be like top three if not one of maybe even number one
120:07
question for me to ask if I got a a chance to ask an omnicient being.
120:11
omnicient being of like
120:13
a question that I can get answer to. Mhm.
120:15
Maybe with some visualization. Mhm.
120:18
Like the shape the topology of the universe. Yeah.
120:22
Like but like I need some details.
120:25
Unfortunately, I'll get an answer that I can't possibly comprehend. Right.
120:30
It's a hyperbolic manifold that's identified across Exactly.
120:34
You need to be able to ask a follow-up question. Exactly. Yeah.
120:37
That would be so interesting.
120:38
Anyway, um classical quantum strategy.
120:41
The second approach combines classical physics with quantum effects.
120:44
This method would this method would require an advanced civilization to manipulate quantum gravity
120:49
effects in ways we don't yet understand.
120:51
There's a lot of in ways we don't understand.
120:53
Yeah, there's a lot of And then there's exotic matter requirements.
120:56
There's a lot of But I can tell you
120:58
I'm pretty sure all of them have in common the feature
121:01
that they're saying here's what I want my wormhole to look like first.
121:05
So it's like saying I want to build a building first.
121:08
So they ar they
121:10
construct there's an architecture
121:12
of the spaceime that
121:14
they're after and then they reverse the Einstein
121:17
equations to say what must matter and energy
121:21
uh what are the conditions that I impose on matter and energy to build
121:24
this architecture which is unfortunately a very early
121:28
step of figuring out
121:30
but it's important because it's how they realized oh wow they have to have
121:33
these negative energies they have to violate certain
121:36
uh energy conditions that we often assume are true
121:39
and then you either say, "Oh, well then
121:42
all bets are off they'll never exist
121:44
or you uh look a little harder and you say, "Well, I can violate
121:48
that energy condition without it being that big a deal."
121:52
And um and again, quantum mechanics often does violate those energy conditions.
121:56
So, do you think the studying of black holes
121:58
and some of the topics we've been talking about will allow us
122:01
to travel faster than the speed of light or travel close to the speed
122:05
of light or do some kind of really innovative
122:07
breakthroughs on the propulsion
122:09
technology we use for traveling in space? Yeah.
122:12
I mean, sometimes I assign in an advanced general relativity
122:15
class the assignment of inventing a warp drive
122:18
and it's kind of similar.
122:19
So the idea is
122:21
uh here's a place you want to get to
122:23
and can you contract
122:26
the spaceime between you
122:29
with some some kind of some something antithetical
122:32
to dark energy the opposite
122:35
and skip across and then push it back out again.
122:39
That's all can you can do that in the context of general relativity.
122:43
Now I I can't find the energy that has these properties but I also
122:47
can't find dark energy.
122:49
So, so we've already been confronted with something
122:51
that we look at the spaceime.
122:54
The spaceime is expanding ever faster.
122:57
We say, "What could possibly do that?"
122:59
We don't know what it is.
123:00
But I can tell you about its pressure.
123:02
I can tell you certain features about it.
123:05
And I just call it dark energy, but I actually have no idea.
123:08
It's just that name's just a proxy for what this it should be called
123:11
invisible because it's not actually dark.
123:12
It's in this room.
123:13
It's not hard to see through. It's not dark.
123:15
It's It's literally invisible.
123:17
Um, so maybe that was a misnomer.
123:19
But the point being,
123:21
I still don't fundamentally know what it is.
123:23
That's not so terrible.
123:24
That's that's the state of the world that we're actually in.
123:27
So maybe warp drive is just kind of like a version of that.
123:29
I I don't know what form of matter can do that yet, but
123:33
at least I can identify the features that are needed.
123:36
So figuring out what dark energy is might land some clues.
123:40
Yeah, it actually it might.
123:42
Um, it it is it is positive energy.
123:45
Um um and a negative pressure
123:48
which is kind of like a rubber band sort of quality.
123:50
We think of pressure as pushing things outward and
123:53
dark energy has a very strange sort of quality that as things move outward
123:57
you feel more energy
123:58
as opposed to less energy.
123:59
The energy doesn't get lower, it gets more.
124:01
And um but it so it doesn't have the right features for the wormhole.
124:05
But those are some pretty surprising features.
124:08
And we we again can
124:10
conjecture like oh hey you know the quantum energy of the vacuum kind of behaves that way.
124:15
That would be a great resolution
124:17
to the dark energy problem.
124:18
It's just the energy of empty space
124:20
and it's the quantum energy of empty space.
124:22
That's an excellent answer.
124:23
The problem is is
124:25
by all our methods
124:27
and all the understanding we have that energy is
124:30
either really really huge
124:32
huge um way bigger than what we see today or it's like zero.
124:39
So that's a numbers problem.
124:41
We naturally fine-tune the energy of empty space to give us this really weird
124:47
value so that we just happen to be seeing it today.
124:50
But again we can think of a kind of dark energy that exists.
124:54
Um so the question is just why is it it becomes why is it
124:57
such such a weird value.
125:00
Um not how is this
125:02
conceivable because we can't conceive of it. Yeah.
125:04
But if it's a weird value that means there is a phenomena we don't understand. Yes.
125:08
There's absolutely a phenomenon.
125:10
Nobody's going to say they're happy with that.
125:12
We're all going to say there's something we don't understand.
125:14
which is why we look to the extra dimensions because then you can say,
125:17
"Oh, maybe it has to do with the size of the extra dimensions or
125:20
the way that they're wrapped up or
125:22
um and so maybe there it's foisted
125:24
on us because of the
125:26
the topology, the connectedness
125:28
of the higher dimensional space.
125:30
These are all things that we're exploring.
125:32
Nobody's landed one that's so
125:34
compelling that uh your friends like it as much as you do."
125:39
What what what do you think would lead to the breakthroughs
125:42
on dark matter and dark energy?
125:44
I think dark matter
125:46
might uh less peculiar
125:51
um than dark energy.
125:52
My hope is that they're tied together.
125:54
That's that would be very gratifying.
125:57
These aren't just separate problems
125:59
coming from different sectors,
126:00
but that they're actually connected.
126:03
um that the reason the dark matter is where it is
126:07
in terms of how much it's contributing
126:10
to the universe is is connected with why the dark energy is showing up right now.
126:14
I would love that.
126:15
That would be a solution like no other, right?
126:18
And and like I said, if it revealed something about dark dimensions,
126:22
you know, that's that would be a happy day.
126:24
Correct me if I'm wrong.
126:26
Dark matter could be localized in space.
126:28
Yeah, dark matter is localized in space. So, it clumps.
126:31
I mean, it doesn't it doesn't clump a lot, you know, but but I
126:34
mean, it's around the galaxy.
126:35
It's in a halo around the galaxy.
126:37
So, people get increasingly
126:38
more confident that it doesn't Oh, it's really compelling. Yeah.
126:42
I mean, you see
126:43
um these images of
126:46
uh galaxies that clusters that that pass through each other
126:50
and you can see where the light is, the luminous matter is distributed.
126:54
And then by looking at the gravitational
126:56
lensing which shows you
126:59
where the actual mass is distributed
127:01
so that light bends around the most massive parts in a particular way.
127:05
So you can reconstruct
127:06
where the mass is gravitationally
127:08
quite separate from looking at the luminous
127:11
matter which is not dark and they are
127:15
separate because the stuff as they pass through each other the interacting
127:19
stuff the luminous stuff collides
127:22
and gets stuck and you can see it colliding and lighting up the dark
127:26
stuff which by definition it's dark because it doesn't interact
127:30
passes right through it's
127:31
right through each other right
127:33
and this is I mean it's so compelling
127:35
And there's lots of other
127:36
um observations, but but that one is just before you just look at it,
127:42
you can see that the
127:44
mass is distributed differently
127:46
than the interacting luminous matter.
127:48
So, uh dark energy is harder to get a hold of.
127:51
Dark energy is much harder to get a hold of.
127:54
But, you know, I mean, the Higs field could have also explained dark energy. Yeah.
127:59
Um, if you've heard of the God particle, I don't know if you know the
128:03
originally Leon Letterman co-authored a book and he wanted to call it the goddamn
128:07
particle because I couldn't find it and his
128:10
his publisher convinced him to call it the God particle.
128:13
Uh, and he said
128:15
he said they managed to offend two groups,
128:18
those that believed in God and those that didn't.
128:21
That's a good line, too. Oh, boy.
128:23
He was very funny.
128:24
He was very witty.
128:25
So, you know, Higs turned out to be Higs great discovery. I mean, unbelievable.
128:31
Um, there it was.
128:32
Build this massive collider
128:35
in CERN in Switzerland and there it is. Unbelievable.
128:38
Kind of where you expect it to be.
128:40
Now, the reason I say it could be
128:42
dark energy is because
128:44
the Higs particle like a particle of light also has a field like an electromagnetic field.
128:50
So light can have this field that's distributed through all space,
128:54
electric magnetic field, and you shake it around and it creates little particles.
128:57
So the Higs field
128:59
is actually more important than the Higs particle,
129:02
the complement to the Higs particle because that's what you and I
129:06
connect with to get mass in our atoms.
129:09
So the idea is that
129:11
our atoms are interacting with this gooey field that's everywhere. Mhm.
129:16
And um and that's what's giving us this experience of inertial mass, but we
129:20
don't actually inter there's not a lot of quanta lying around.
129:23
There's not a lot of Higs particles lying around cuz they decay.
129:26
So it's the field that's really important.
129:28
And that field could act like a dark energy.
129:31
It's just not in the right place,
129:35
meaning it's not at the right
129:37
the energy's too high
129:38
in to explain this tiny tiny value today.
129:41
And again, we're back to this mismatch.
129:43
It's not that we can't conceive
129:45
of forms of dark energy,
129:47
it's that we can't make one
129:49
where we where we're finding it.
129:51
So, uh I wonder if you can comment on something that I've I've heard recently.
129:55
There's some people who say
129:59
uh people outside of physics say that, you know, dark matter and dark energy
130:02
is just something physicists made up. Yeah.
130:04
to uh put a label
130:06
on the fact that they don't understand
130:09
a very large fraction of the universe and how it operates.
130:13
Is there some truth to that?
130:14
What's your response to that?
130:15
There's some truth to it, but but it's really missing a huge point, which
130:19
is that if we did not understand the universe as incredibly
130:22
precisely as we do,
130:23
it's stunning that there's modern precision cosmology. It's absolutely incredible.
130:30
uh when Kobe which is an experiment that measured the light left over from
130:34
uh the big bang
130:35
in the 80s first revealed
130:38
its observations I mean
130:40
there was applause you know
130:42
people were cheering right
130:44
it was unbelievable we had predicted
130:46
and measured the light left over from the big bang
130:50
and because of all the precision that's happened since then
130:54
that's how we're able to confront
130:57
that there's things that we don't know and that's how we're able to confront
131:00
like, "Wow, this is really
131:02
everything everybody has ever seen
131:04
and ever will see as far as we understand
131:07
makes up less than 5%
131:09
of what's out there." Yeah.
131:10
And and so I would say
131:12
yes, we're just giving proxy names to things we don't understand.
131:15
But to dismiss that as some kind of
131:18
oh, they just don't know that it is actually quite the opposite.
131:21
It is a stunning achievement to be able to stare that down
131:25
and to have that
131:26
um so precise and so compelling that we're able to
131:30
to to know that there's dark energy and dark matter.
131:34
I don't think those are disputed
131:35
anymore and they were up until, you know, recently.
131:39
They were still disputed.
131:40
I think we're still at such early stages
131:42
where we're not really even at a good explanation. Right.
131:46
You've mentioned a few.
131:47
Well, I can think of examples of dark matter that exist that we really
131:51
know for sure are real versions of dark matter, like nutrinos.
131:55
Right now, they're radiating through us.
131:57
That's very well confirmed.
131:59
And they're technically dark.
132:01
They don't interact with light
132:04
and so we can't see them.
132:05
Right now, they're raining through us.
132:06
If we could see
132:08
the dark matter in this room and we absolutely know is coming from the
132:11
sun, it would be wild.
132:13
Be a rainstorm, you know,
132:15
but they're just invisible to us.
132:17
Um, mostly they pass through our bodies.
132:19
Mostly they pass through the earth.
132:21
Occasionally they get caught in some fancy
132:23
detector experiment that somebody built specifically to catch solar.
132:28
So dark matter is known to exist.
132:32
It's just again there's not enough of it.
132:35
It's not the right mass
132:36
to be the dark matter that makes up this missing component.
132:41
I wanted to say that I was been recently fascinated by the flat earth
132:44
people because there's been a
132:47
split in the community. Mhm.
132:50
First of all, the community is fascinating study of human psychology.
132:53
uh they did um
132:58
this experiment where I I forgot who funded it, but they
133:02
sent like physicists and flatearthers Mhm. to Antarctica. Really?
133:08
And this split happened because half of them got converted into round earthers. Wow.
133:13
Well, good for them.
133:13
And then but then the other half just went that it was all a sigh out. Really? That's fascinating.
133:19
Did somebody film that?
133:20
That'd be a great documentary. Yeah, it did. They did.
133:22
I made a whole thing.
133:23
This was just at the end of last year.
133:25
There was a big
133:26
I meaning cuz I I I think that's such a clean
133:29
study of conspiracy theories
133:31
because like there's so many conspiracy
133:33
theories have some inkling
133:35
of truth in them.
133:39
Like there's some elements
133:41
about the way governments
133:43
operate or human psychology that there's it's too messy.
133:46
Flat Earth to me is just clean.
133:48
It's like spaghetti monster or something like right.
133:50
It's just a cleanly wrong thing.
133:53
So it's a nice way to understand the psychology
133:55
how a large number of people
133:57
can believe a thing. Yeah.
133:59
And why do they want to believe a thing?
134:01
What's very interesting is
134:04
um use trying to use rational arguments.
134:07
So I that makes it even more confounding to me.
134:11
I would understand more
134:13
somebody who just said, "Look, I have faith and I believe these things and
134:16
it's not about reason and it's not
134:18
about logic and okay.
134:21
I mean, I don't relate to it, but okay."
134:23
Um, but to say
134:25
I'm going to use reason and
134:27
logic and to prove to you
134:30
this completely orthogonal conclusion that I find really interesting.
134:34
So, there's some kind of romance.
134:36
There's about reason and logic. Yeah.
134:39
But also there's a
134:41
questioning of institutions that's really
134:43
interesting and important to understand.
134:45
Well, I mean I
134:47
I actually appreciate the skeptics's stance.
134:53
I don't scientists also have to be skeptics.
134:55
We have to be childlike,
134:57
naive, and somewhat in some sense
134:59
really open to anything, right?
135:01
Otherwise, you're not going to be a flexible.
135:03
You're not going to be at the forefront.
135:04
But but also to be skeptical.
135:07
Um, so I have respect for I guess I that's exactly what I'm saying
135:11
is more confusing because
135:13
to invoke skepticism and then to want to use rational argument.
135:19
What is the other component
135:21
that's that's going into
135:23
this because as you said this is something that's easily verified.
135:25
I mean, we have people in space.
135:27
So, you have to believe a lot more
135:29
machinery um that's a lot more difficult to
135:36
explain as a wild conspiracy.
135:38
So, there's something about the conspiracy
135:39
that stirs an emo a positive emotion.
135:43
I think one of the most incredible things I have to talk to you
135:45
about this, one of the most incredible things that humans
135:48
have ever accomplished is LIGO. Hm.
135:52
We have to talk about gravitational waves.
135:54
And the the very fact that we're able to detect gravitational
135:57
waves from the early
136:00
universe is effing wild. It's crazy. Yeah.
136:04
Can you explain what gravitational waves are?
136:06
And we should mention you wrote a book about the humans
136:10
about the whole journey
136:11
of detecting gravitational waves and LIGO
136:13
Black Hole Blues is the book.
136:15
But can you talk about gravitational
136:16
waves and how the hell we're able to actually do it?
136:21
Let's just start with the idea of gravitational waves.
136:24
I have to move around a lot of mass
136:26
to make anything interesting happening in gravity.
136:28
I mean, if you think about it, gravity is incredibly weak.
136:30
I mean, right now, the whole Earth is pulling on me and I can
136:33
still get out of this chair and walk around. Like, that's insane.
136:37
The whole Earth, you know, gravity's weak, right?
136:41
Um, so to get something going on in gravity, I need like big objects
136:45
and things like black holes.
136:47
So the idea is if black holes curve space and time around them in
136:51
the way that we've been describing
136:52
things follow along the curves in space.
136:54
If the black holes move around,
136:56
the curves have to follow them, right?
136:59
But they can't travel faster than the speed of light either.
137:02
So what happens is as black holes, let's say, move around, maybe I've got
137:06
two black holes in orbit around each other. That can happen.
137:09
It takes a while.
137:09
a wave is created in the actual shape of space
137:13
and that wave follows the black holes as black holes are undulating.
137:17
Eventually, those two black holes will merge
137:20
and as we were talking about, it doesn't take an infinite time even though
137:23
there's time dilation because they're both so big.
137:25
They're really deforming spaceime a lot.
137:28
I don't have a little tiny marble falling across an event horizon.
137:30
I have two event horizons.
137:32
And in the simulations,
137:33
you can see it bobble
137:34
and they merge together and they make one bigger black hole.
137:38
And then it radiates
137:39
in the gravitational waves.
137:41
It radiates away all those imperfections
137:43
and it settles down to one
137:45
quscent perfectly silent black hole that's spinning. Beautiful stuff.
137:50
And it emits E= MC² energy.
137:52
So the mass of the final black hole
137:55
will be less than the sum of the two starter black holes.
137:59
And that energy is radiated
138:01
away in this ringing of spaceime.
138:03
It's really important to emphasize
138:05
that it's not light.
138:07
None of this has to do
138:09
literally with light that we can detect with normal things that detect light.
138:14
X-rays form of light.
138:15
Gamma rays are a form of light.
138:17
Infrared, optical, all this whole electromagnetic spectrum.
138:20
None of it is emitted as light. It's completely dark.
138:23
It's only emitted in the rippling of the shape of space.
138:26
A lot of times it's likened closer to sound.
138:28
Technically, we've kind of argued, I mean, I haven't done an anatomical
138:31
calculation, but if you're near enough
138:34
to two colliding black holes, they actually ring spaceime in the human auditory range.
138:38
The frequency is actually in the human auditory range
138:42
that the shape of space could squeeze and stretch your eardrum even in vacuum.
138:47
And you could hear literally hear these waves ringing.
139:02
So the idea is that they're closer
139:04
um to something that you would want to
139:08
map as a sound than it's something as a picture. Sorry.
139:11
So what do you think it would feel like
139:14
to ride the gravitational wave?
139:16
So like to be to exist
139:18
to exist as you mentioned
139:20
here would literally bob around like your orbit would change
139:24
right if you were orbiting
139:26
these black holes two black holes you'd be on a kind of complicated
139:29
orbit but your orbit would get tossed about
139:32
well how would the experience be because you're inside
139:35
spaceime yes I see so the the the the
139:38
black hole is experienced within spacetime as a squeezing and stretching.
139:43
So you would feel it as a sort of squeezing and stretching and you
139:46
would also find your location change
139:48
where your where you would fall would be redirected.
139:52
Um so it's literally like a squeezing and stretching.
139:55
That's the way to think about it.
139:56
And and and it's
139:58
very detailed the sort of
140:01
nature of this and
140:03
um but for many years people thought well these gravitational waves kind of have
140:07
to exist for these intuitive reasons I've described. spacetime's curved.
140:10
I move the curve.
140:11
The wave has to propagate
140:14
um through that curved spaceime.
140:15
But people didn't know if they really carried energy.
140:18
The arguments went on and back and forth and
140:21
papers written in decades, right?
140:24
Um but I like this sound an
140:27
more than an analogy
140:28
because I I liken the black holes as like mallets on the drum.
140:32
The drum is spacetime. Yeah.
140:34
As they move, they bang on the drum of spaceime and it rings. Mhm.
140:39
Remarkably, those gravitational waves do things don't interfere with them very much.
140:44
So, they can travel for two billion years, light years, you know, in distance,
140:48
two billion years in time,
140:49
and get to us
140:51
kind of as they were when they were emitted,
140:54
quieter, more diffuse, maybe they've stretched out a little bit from the expansion of
140:59
the universe, but they're pretty preserved.
141:02
And so the idea of LIGO,
141:04
this instrument, is to build a gigantic musical instrument.
141:08
It's kind of like building an electric guitar
141:11
where the electric guitar is recording
141:13
the shape of the string
141:15
and it plays it back to you through an amplifier.
141:18
LIGO is trying to record the shape of the ringing
141:21
drum and they literally listen to it in the control room.
141:24
just sort of hums and wobbles
141:27
and they're like trying to play this recording drum back to you
141:31
as opposed to taking a snapshot.
141:32
It's like a in time. Yeah.
141:34
But to construct this guitar Yes.
141:37
gigantic instrument has to be very large and extremely precise. It's unbelievable.
141:42
I can't believe they succeeded.
141:44
I honestly I can't believe they succeeded.
141:46
It was so insane.
141:48
It was such a crazy thing to even attempt.
141:50
It took them 50 years. Really?
141:53
It's people who started in their 30s and 40s who were in their 80s
141:57
when when it succeeded.
141:58
I mean, imagine that
141:59
tenacity, the unbelievable commitment.
142:03
Um, but the sensitivity
142:04
that we're talking about is we have a
142:06
this musical instrument the s four kilometers
142:10
spanning four kilometers in a kind of L-shape
142:12
with these tunnels where there's this the largest holes in the earth's atmosphere
142:17
because they pulled a vacuum in these tunnels to build this instrument.
142:20
Um, and they're measuring
142:23
they're they're trying to record the wobbling of spaceime
142:26
right as it passes this sort of undulation.
142:29
Uh, that amounts to
142:32
less than 110,000th the variation
142:35
in a proton over the four kilometers.
142:39
It's an insane insane achievement. Oh, great engineering.
142:44
I don't know how they did I swear I follow them around from
142:48
so I just for fun I'm I'm very theoretical.
142:51
I don't build things.
142:52
I'm always super impressed
142:55
that people can translate
142:56
something on the page and
142:58
and it looks like wires and I don't know how
143:01
I'm always surprised at what it looks like and but I walked the tunnels
143:05
with Ray Weiss who won the Nobel Prize along with Kip Thorne and Barry
143:09
Barish one of the project managers and I walked the tunnels with Ray.
143:12
It was a delight.
143:13
I mean Ray is one of the most delightful people.
143:15
Kip is one of the most wonderful people I've ever known.
143:18
Um, and uh, Rey said to me, you know, the reason why it was
143:22
called Black Hole Blues is because
143:24
about a month before
143:25
they succeeded, he said to me, if we don't detect black holes, this whole thing's a failure.
143:31
And, um, we've led this country,
143:34
you know, down this wrong path.
143:36
And, um, he really felt like this tremendous
143:39
responsibility for this project to succeed.
143:42
And it weighed on him, you know,
143:44
it was uh it was just quite tremendous
143:47
what the the integrity,
143:50
right, the scientific integrity.
143:52
And the first instruments
143:53
he built, he was building outside of MIT
143:55
and on a tabletop
143:57
and his his colleagues said, "You're not going to get tenure,
144:00
you know, you're never going to succeed."
144:03
Um, and they just kept going. People like that.
144:07
So huge teams, huge
144:10
collaborations are just uh is how the world moves forward
144:14
because it's an example.
144:16
It's you know there's
144:18
building cynicism about bureaucracies
144:20
when a large number of people especially
144:22
connected to government can be productive.
144:24
You know bureaucracies slow everything down.
144:26
So it's nice to see
144:29
an incredibly unlikely exceptionally
144:31
difficult engineering project like this succeed. Oh yeah.
144:35
So I I understand why there's this weight on his shoulders and I'm great
144:38
there's I'm grateful that there's great
144:41
leaders that push it forward like that.
144:44
Yeah, it really is.
144:45
You see so many
144:47
u moments when they could have stumbled. Yeah.
144:49
Um and they built a first generation
144:51
machine just after 2000
144:53
and it wasn't a surprise to them but it detected nothing. Crickets. Crickets.
144:59
And they just, you know, they have the wherewithal to keep going. second generation.
145:04
They're about to turn the machine on, quote unquote.
145:06
You It's a little bit of a simplification,
145:08
but do their first science run
145:10
and they decide to postpone
145:12
um because they feel they're not ready yet.
145:15
It's September 14th in 2015
145:17
and the experimentalists are out there.
145:20
They're in the middle of the night, you know, they're working all night long
145:22
and they're they're banging on the thing,
145:24
you know, literally driving trucks, slamming the brakes on to see the noise that it creates.
145:29
And um so they're really messing with the machine, really interfering with it just
145:33
to kind of calibrate
145:34
how much noise can this thing tolerate.
145:36
And I guess the story is is they get tired.
145:38
There's there's an instrument in Louisiana and there's one in Washington state.
145:41
And they go home,
145:43
put their tools down, they go home.
145:45
It's um they leave the instrument locked though, mercifully.
145:49
And um it's something like within the span of an hour of them driving
145:53
back to their humble abodess that they have in these remote
145:57
uh regions where they built
146:00
instruments, this gravitational wave washes over, I think it hits Louisiana first.
146:05
It travels across the US,
146:08
brings the instrument in Washington state.
146:10
It began, you know, over a billion and a half years ago
146:14
before multisellular organisms had emerged on the earth.
146:17
Just imagine this from like
146:19
a distant view, this collision course, right?
146:22
And um it's the centenerary.
146:25
It's it's it's the year Einstein published general relativity.
146:29
That's so it was this, you know, a hundred years.
146:33
I mean, just think about where that where that signal was when Einstein
146:37
in, you know, 1915
146:40
wrote down the general theory of relativity.
146:42
It was on its way here.
146:44
It was almost here.
146:47
Uh, what do you think is cooler?
146:49
Uh, Einstein's general relativity or LIGO.
146:55
Well, I can't disparage
146:57
my friends, but of course, relativity is just so all-encompassing.
147:00
No, but see, so hold on a second.
147:02
All-encompassing, super powerful leap of a theory. Yeah.
147:07
And they built it. They built it.
147:10
I don't know, man.
147:11
the greatest engineering on the in the you know
147:14
cuz I I don't know
147:17
you know yeah humans getting together and building the thing that's really
147:20
ultimately what uh what impacts the world right
147:25
yeah uh I mean I I just
147:28
as I said my admiration
147:29
for for Ry and Kip and the entire team is is enormous
147:33
and you know just imagining
147:34
Rey had been out there on site he had just left to go back
147:38
home um wakes up in the middle night and sees it, you know, can you imagine?
147:44
And there's a signal,
147:45
you know, there's something in the log.
147:47
He's like, "What the hell is that?"
147:50
So, speaking of the human story, you uh also wrote the book A Mad
147:54
Man: Dreams of Touring Machines.
147:56
It connects two geniuses
147:57
of the 20th century, Alan Touring and Girdle.
148:00
What specific threads connect these two minds?
148:04
Yeah, I was um
148:06
was really mesmerized by these two characters.
148:09
They people know of Alan Turing for
148:12
having ideiated about the computer
148:16
being the person to really imagine that.
148:19
But his work began with
148:21
thinking about God's work.
148:23
That's where it began and it began
148:25
with this phenomenon of undecidable
148:29
propositions or unprovable propositions.
148:32
So um uh there was something huge that happened in mathematics which is people
148:38
imagined that any problem in math
148:41
could technically be proven to be true.
148:43
doesn't mean human beings are going to
148:45
prove every fact about everything in mathematics but you know it should be provable
148:49
right I mean it seemed kind of
148:51
it's not that wild
148:52
supposition and everyone believed this all the great mathematicians
148:55
Hilbert was a call of his to prove
148:58
that and go to a very strange
149:03
uh very unusual he he was a platonist
149:06
he he literally believed that mathematical
149:09
objects had a existential
149:11
reality he wasn't so sure about this reality.
149:14
This reality he struggled with.
149:16
He he was um a physical reality but he absolutely
149:20
took very seriously a platonic
149:22
reality and often his own
149:24
way of thinking and he proved
149:27
that there were facts even among the numbers
149:29
that could never be proven to be true.
149:32
You have to think about that how wild that is that
149:35
even a fact about numbers seems very simple
149:40
uh could be true and
149:42
unprovable could never exist as a theorem
149:45
for instance in mathematics
149:48
um this incompleteness result
149:51
was very disturbing essentially it's equivalent to saying there's no theory of everything for
149:56
mathematics it was very disturbing to people but it was very
149:59
profound and Alan Turing
150:02
got involved in this because he
150:04
was you know he was thinking about uncomputable numbers.
150:08
So um and that led him
150:12
what's an uncomputable number?
150:13
A number like 0.175.
150:16
It just goes on forever with no pattern and
150:18
I can't I can't even figure out how to generate it.
150:21
There's no rule for making that number.
150:24
And he was able to prove that there were such things as these
150:27
uncomputable effectively unknowable numbers.
150:30
That might not sound like a big deal was actually was actually actually really quite profound.
150:34
He was relating to godal
150:36
intellectually right in the space of ideas.
150:39
But he goes a very different path
150:42
almost philosophically the opposite direction.
150:44
He he he builds he starts to to think about machines.
150:48
He starts to think about mechanizing thought.
150:50
Starts to think what is a proof?
150:52
How does a mathematician reason?
150:54
What does it mean to reason at all?
150:55
What does it mean to think?
150:56
And he begins to imagine inventing a
150:59
machine that will execute
151:03
certain orders, you know,
151:05
mechanize thought in a specific way.
151:06
Well, maybe I can get a machine.
151:08
I can imagine a machine that does this kind of thinking
151:11
and that he can prove that even a machine
151:13
could not compute these uncomputable numbers.
151:16
But where he ends up is the idea of a universal machine that computes.
151:22
Um, essentially can take different software
151:25
and execute different jobs, right?
151:27
We don't have a different computer
151:29
to connect to the internet than we do to write papers.
151:32
It's one machine and
151:34
um, one piece of hardware, but it can do all of these this huge variety of tasks.
151:40
And so he really does invent the computer essentially.
151:44
Um, and famously he uses that thinking in a very primitive form
151:49
in the war effort where he's recruited
151:52
to help break the German enigma code.
151:55
Um, which is heavily encrypted and largely believed to be uncrackable code.
152:01
and um and and people believe that Turing
152:04
and his very small group actually turned the tide of the war in favor
152:07
of the allies precisely
152:10
um by using a combination of this thinking and just sheer ingenuity and some luck.
152:16
Um but uh but the other profound
152:20
revelation that Turring has is that
152:22
well maybe we're just
152:24
machines right and uh just biological
152:27
machines and this is a huge shift for him.
152:30
feels very different from God who doesn't really believe in reality and
152:34
thinks numbers are are platonic
152:37
realities and and Turing
152:38
kind of thinking we're kind of like we're actually machines and we could be
152:43
So of course Turing's
152:45
influence is still widely felt on many levels.
152:48
So as to the on many levels yeah in complexity
152:51
theories theoretical computer science and mathematics
152:54
but also in philosophy
152:55
with his famous touring test paper.
152:57
So like you said conceiving
152:59
like what what is the connection
153:01
that I guess Ger
153:02
never really made between mathematics
153:04
and uh touring did
153:08
but I think there's another connection to those two people is that they're both
153:11
in their own way kind of tormented yeah humans.
153:14
I think they were very tormented.
153:16
What aspect of that
153:20
contributed to who they are and what ideas they developed?
153:23
I mean I think so much.
153:26
I don't I don't want
153:29
to promote the kind of
153:32
trit trope of the mad genius,
153:35
you know, if you're brilliant, you are insane.
153:37
I don't think that.
153:38
I don't think if you're insane, you're brilliant.
153:40
Um but I do think
153:43
if somebody who's very brilliant
153:45
who also chooses not to go for
153:49
regular gratification in life Mhm.
153:52
they don't go for money.
153:53
They don't necessarily value creature comforts.
153:58
They're they're not leveraging for fame.
154:01
I mean they're really after something different.
154:04
I think that can lead to a kind of runaway instability actually. Yeah.
154:08
sometimes um they're already outside of kind of social norms.
154:13
They're already outside of normal connections with people.
154:17
They've already made that break.
154:20
Um and I think that makes them vulnerable.
154:23
So God, you did have a wife and an strong relationship
154:28
as far as I understand and had a was a successful mathematician
154:31
and ended up at the Institute for Advanced Study where he
154:34
walked with Einstein to the institute every day.
154:37
Um and they talked about and he proved certain really unusual things in relativity.
154:42
You you made reference to these rotating galaxies.
154:45
We were talking and actually Goodel
154:47
had a model of a rotating universe that
154:49
you could travel backwards in time.
154:50
It was mathematically correct.
154:53
Showed Einstein that within relativity
154:55
you could time travel.
154:57
Um just a unbelievably
155:00
influential and brilliant man.
155:01
But um he was probably a paranoid schizophrenic.
155:05
Um he did have breaks with reality.
155:09
Um he uh was I think quite distrustful
155:14
and feared the government feared his food was being poisoned and
155:19
you know ultimately literally
155:21
starved himself to death.
155:23
Um and it's such an
155:27
extreme outcome for such
155:31
a fil mind you know for for such a brilliant mind.
155:35
I think it's important to sort of not to glorify or romanticize
155:38
madness or or um suffering,
155:41
but to me, you can flip that around and just be inspired
155:45
by the peculiar maladies of a of a human mind, how they can be
155:50
leveraged and channeled creatively. Oh yeah.
155:53
I think a lot of us
155:55
obviously probably every human has those peculiar qualities.
156:00
You know, uh I talk to people sometimes about just my own psychology and
156:04
I'm extremely self-critical and
156:08
uh I'm drawn to the beauty in people,
156:12
but because I make myself vulnerable to the world, I can really be hurt
156:15
by people and that thing.
156:17
Okay, you can lay that out.
156:18
That's this particular human. Okay.
156:22
And you know, there's a bunch of people that will say, well, you many
156:26
of those things you don't want to do. Mhm.
156:29
Maybe don't be so self-critical.
156:31
Maybe don't be so open to the world.
156:34
Maybe have a little bit more reason
156:36
about how you interact with the outside world.
156:39
It's like, yeah, maybe.
156:41
Or maybe be that and be that fully and channel that into a productive
156:45
life into we're all going to
156:49
in the time we have on this earth.
156:52
Make the best of the
156:55
particular weirdness that you have. Mhm.
156:59
And maybe you'll create something special in this world and in the end it might destroy you.
157:03
And I think a lot of these stories are that it's not that Oh yeah.
157:07
It's not like saying,
157:09
"Oh, because uh in order to achieve anything great, you have to suffer." No.
157:13
If you're already suffering Mhm.
157:16
if you're already weird,
157:17
if you're already somehow
157:19
don't quite fit in your particular environment,
157:23
your particular part of society, use that somehow.
157:26
I use the tension of that, the friction of that to create something.
157:29
I mean that's what I you know
157:31
um ner who suffered a lot
157:34
from even like stupid stuff like stomach issues like oh yeah
157:39
kind of right migraines
157:41
is like psychosmatic or
157:42
psychophysical but and all those
157:45
that's the real it's like
157:48
that can somehow be
157:50
channeled into a productive life.
157:52
It's it should be inspiring.
157:54
A lot of us suffer in different ways. Yeah.
157:56
I'm a big believer in the tragic flaw.
157:58
Actually, I think the Greeks really had that right.
158:01
Um, you're describing it.
158:04
What makes us great is ultimately our downfall.
158:07
Maybe that's just inevitable.
158:08
The choice could be not to be great.
158:12
Um, and I guess I I that's sort of what I mean by they
158:15
had already broken from a traditional
158:18
path because they decided
158:20
to something so elusive
158:24
and um that would
158:26
isolate them to some extent
158:29
inevitably and that could fail, right?
158:32
And whose rewards were hard to predict even.
158:36
Um, and I do think that that
158:39
all the character traits that went into
158:43
accomplishments were the same traits that went into their demise.
158:47
And um, I think you're right.
158:50
You could say, well, you know, Lex, maybe you should not be
158:53
empathetic, hold yourself, cut yourself off a little, but protect yourself, right?
158:57
But isn't that exactly what you're bringing?
159:00
one of the elements that you're bringing that
159:02
makes something extraordinary in a space that lots of people try
159:06
um to break through. Yeah.
159:07
And but we should mention that for every girl on touring,
159:11
there's millions of people
159:13
who have tried and who have
159:15
destroyed themselves and without without reason.
159:18
I would find it impossible
159:21
to not pursue uh a discovery
159:25
that I could I could imagine my way through.
159:29
If I can really see how to get there,
159:32
I I cannot imagine
159:33
abandoning it for some other reason.
159:37
Uh uh fear that it would be misused,
159:40
which is a real fear. Mhm. Right.
159:42
I mean, it's a real concern.
159:44
Um I don't think in my work since I'm doing extra dimensions
159:47
in the early universe,
159:49
but or black holes, you know, I feel pretty safe.
159:51
But I mean, who knows, right?
159:55
Bore couldn't think of a way
159:56
to use quantum mechanics to kill people. Mhm.
159:59
Um I cannot imagine pulling back and saying, "Nope,
160:03
I'm not going to finish this."
160:04
You know, I'll give you a counter example of an exceptionally brilliant person. Terrence Tao, brilliant. Brilliant mathematician. Brilliant. Mhm.
160:12
He is better than out of all the brilliant people I've ever met in the world.
160:16
He's better than anybody else
160:18
at working on a hard
160:21
problem and then realizing
160:23
when it's for now
160:25
a little too hard.
160:26
Oh, that I can do.
160:27
and stepping stepping away
160:29
and he's like, "Okay,
160:30
this is now a weekend problem." Uhhuh.
160:33
Cuz he has he has seen too much for him.
160:37
Everybody's different, but Gregori Pearlman Mhm.
160:40
or Andrew Wilds who who give themselves a great story
160:44
completely for many years over to a problem. Yes.
160:47
And for every every Gigor
160:49
and they might not have cracked it. Yep.
160:51
So you choose your life story like I totally agree.
160:54
Now I'm not going to say sometimes I take too long
160:58
to come to that conclusion but I will proudly say as most theoretical
161:02
physicists should that I kill most my ideas myself. Okay.
161:05
So, you walk away.
161:07
I am absolutely able to say, "Ah, that's just not I mean, I'm not
161:10
going to deny that
161:11
sometimes I maybe take a while to come to that conclusion
161:16
longer than I should, but I will I absolutely will.
161:18
I will drop it."
161:19
And that is that is
161:21
any self-respecting physicist should be able to do that.
161:24
The problem is with somebody like Andrew Wilds, you were describing
161:27
who to prove last theorem,
161:30
it took him seven years.
161:32
Was that the number? Something like that.
161:33
he went up into his
161:35
mother's attic or something
161:36
and did not emerge for seven years
161:39
is that maybe he did he was on the right track.
161:41
He wasn't wrong and and but that's so it could have been interminable.
161:45
He still might not have gotten there
161:47
in the end and and so that's the the really difficult space to be
161:51
in uh where you're not wrong, you are on to something,
161:56
but it's just asically
161:58
approaching that solution and you're never actually
162:01
going to land it.
162:02
Um that happens and he had a really I it would break me straight up break me.
162:08
He had he had a proof. Yes.
162:11
He announced it and they somebody found a mistake in it.
162:14
That would just break me. Yeah.
162:16
Because you now everybody gets excited, right?
162:19
And now you you you
162:20
realize that it's a failure and to go back
162:23
taking a year for people to check it.
162:24
It's not the kind of thing you look over in an afternoon
162:27
and then to to have the will to have the confidence and the patience to go back.
162:31
unbelievable rigorously go through work through it.
162:34
It's a great story.
162:34
But then there's another great story, Gregori
162:36
Pearlman, who uh spent
162:38
seven years he and turned down the Fields Medal.
162:40
He did it all alone.
162:42
And then after he turned on the Fields Medal and the Millennial Prize,
162:46
proving the porn conjecture,
162:47
he just walked away. Yeah.
162:51
Now that's a very different psychology. That's wired differently.
162:54
Doesn't care about money, doesn't care about fame, doesn't care about anything else. Yep.
162:58
In fact, where is he now? Uh in St.
163:00
in Petersburg, Russia trying to
163:02
trying to get a conversation with him.
163:04
It turns out when you walk away and you're a recluse and you enjoy
163:08
that, you also don't want to take
163:10
some weird dude in a tie.
163:12
So, turns out I'm trying. I'm trying.
163:16
Well, if you look at someone like
163:19
his his eccentricities were were completely different, right?
163:24
It's not as though there's some mold.
163:26
And I I really don't like it when it's portrayed that way.
163:28
These are really individuals
163:30
who um who were still lost in their own minds but in very different ways.
163:36
And Turring was openly
163:38
gay really um during this time.
163:41
You know, he was working
163:43
during the war, World War II, so we understand
163:46
the era and it was illegal
163:48
um in Britain uh at the time.
163:53
and he kind of refused conceal himself.
164:00
Um there was a time when
164:03
the kind of attitude was, well, we're just going to ignore it.
164:07
But he had been robbed
164:08
by somebody that he had picked up somewhere.
164:12
I think it was in Manchester.
164:14
And it was such a small thing.
164:15
I don't know what they took.
164:16
It took like nothing, you know? It was nothing.
164:19
But he he couldn't tolerate.
164:22
He goes to the police
164:24
and he tells them
164:26
and then he's arrested.
164:28
He's the criminal because it involved this homosexual act.
164:32
Now here you have somebody who
164:34
made a major contribution
164:36
to the allies winning the war.
164:39
I mean it's just unbelievable.
164:42
Not to mention the genius mathematical genius.
164:45
I mean he saved
164:46
the lives of the people that were doing this to
164:49
him and they essentially chemically
164:52
castrated him as as a punishment.
164:55
That was his sentence.
164:57
And he became very depressed and suicidal.
165:01
And um the story is he was he was obsessed with Snow White, which was recently released.
165:08
And he used to chant
165:10
one of the uh
165:12
little I don't know if you would call them poem songs.
165:15
Uh dip the apple in the brew, let the sleeping death seep through was
165:20
a chant from Snow White.
165:21
And um the the belief is is that he dipped
165:25
an apple in cyanide
165:27
and bit from the poison apple.
165:28
Now I don't know if this is apocryphal, but people think that the apple
165:31
on the Macintosh with the bite out of it
165:34
is a reference to Turring.
165:35
Now some people deny this. That's nice. That's nice.
165:38
Um but uh some people say he did that so his mother could believe
165:43
that maybe it was an accident,
165:45
but yeah, quite a terrible end. Yeah.
165:49
but to two of the greatest humans ever.
165:53
I think the reason
165:54
why um I I
165:57
tie them together, not just because ultimately their work is so connected,
166:01
but but because there's this sort of impossibility
166:04
of understanding them, there's this sort of
166:07
impossibility of proving something about their lives
166:10
that even if you try to write factual
166:12
biography, there's something that eludes you.
166:15
And I felt like that's kind of fundamental to the mathematics.
166:19
the incompleteness, the undecidable, the uncomputable. Yeah.
166:23
Um, so structurally it was
166:26
it was about what we can kind of know and what we can
166:29
believe to be true but can't ever really know. Yeah.
166:32
Limitations of formal systems, limitations. Exactly.
166:35
Biography, limitations of fiction and non-fiction. Limitations.
166:40
So you I there's so many layers to you.
166:42
So one of which there's this
166:44
romantic notion of just understanding
166:47
humans exploring humans and there's
166:49
the exploring science there
166:51
exploring the very rigorous
166:53
detailed physics and cosmology of things.
166:56
So uh there's art the kind of artistry.
166:59
So I I I saw that you're the chief science officer of Pioneer
167:02
Works which is mostly like an artist type of situation.
167:05
It's a place in Brooklyn.
167:07
Can you explain to me
167:08
what that is and what role does
167:11
art play in your life?
167:13
Yeah, I can start with Pioneer Works.
167:15
Pioneerics in some sense
167:16
it was inevitable that I would land at Pioneerics.
167:19
It felt like I was marching there
167:21
for many years and and just it it came together again like at this collision.
167:25
Um it was founded by this artist Dustin Yellen. Very utopian idea.
167:29
He bought this building this old iron
167:31
works factory called Pioneer Iron Works in in Brooklyn.
167:34
was in complete disrepair,
167:35
but a beautiful old
167:37
um building uh from the late 1800s.
167:40
And he wanted to make this kind of collage.
167:45
Dustin's definitely a collage artist.
167:46
Works in glass, very big pieces,
167:48
very imaginative and and
167:51
wild and narrative and into nature and
167:55
consciousness and and I think he wanted to do that with people.
167:58
He wanted a place of a collage,
168:01
a living example of artists and scientists.
168:05
And it was founded by Dustin and and Gabriel Florence was the founding artistic director.
168:10
Um, it it was started just before Hurricane Sandy.
168:14
I don't know if people feel as strongly about Hurricane Sandy as New Yorkers
168:17
do, but it was a real moment around 2012, 2013.
168:20
Sort of paused the project and you can even see the kind of waterline
168:24
on the brick of where Sandy was.
168:27
I came in and
168:28
collided with these two
168:31
uh shortly after that
168:32
and it really was like a collision.
168:34
I'm science, you know, their art.
168:37
Gabe makes everything, builds everything with his bare hands. Dustin's a dreamer. They love science.
168:42
They really wanted science, but science is hard to access.
168:46
Um I have always
168:48
loved the translation of science
168:50
in literature, in art.
168:52
Uh, I love fiction writers, like really literary
168:55
fiction writers who dabble thinking about science.
168:58
And I I I I
169:00
very firmly believe science is part of culture.
169:02
I just I know it to be true.
169:04
I don't think of myself as doing outreach or education.
169:07
I I don't like those labels.
169:09
I'm I'm doing an artist in their
169:16
uh studio working out problems,
169:19
understanding materials, building a body of work.
169:21
Nobody says to them when they exhibit, why are you doing outreach or
169:25
uh or are you doing education?
169:26
You know, it's the logical
169:30
So I feel that
169:32
if you've had the privilege
169:34
of knowing some of these people, of seeing a little bit from the summit,
169:38
if you've had a little glimpse yourself, that
169:40
that you bring it back to to to to the world.
169:43
So we boom exploded.
169:46
Pioneerics became science and art.
169:49
It's not artists who all do science or scientists who do art.
169:53
It's real hardcore scientists talking about science and a lot of live events.
169:57
We have a magazine called Broadcast
169:59
where we feature all of the disciplines
170:01
rubbing together artists working on all kinds of things.
170:04
When I first started doing events there, my my first guest
170:08
um like you, I was talking to people and this was like I know
170:11
how to talk to people because I know these guys
170:13
and I've been on the interviewe
170:15
side so much I know exactly it was like fully formed for me how
170:18
to do those conversations.
170:20
Yeah, you're extremely good at that also. Yeah, thank you. I appreciate that.
170:24
I You learn how to do it too though.
170:26
I mean, I don't think the first one I did.
170:28
I think I've learned, right?
170:29
And you acquire, you get better. It's really interesting.
170:32
Um, and I love to study.
170:34
I think you do, too.
170:35
I really look into
170:37
the material and that and I I love science. I really do.
170:40
I want to talk to a crisper
170:42
biologist because I don't understand it and I want to understand it.
170:46
And I saw there's a bunch of cool events and very
170:48
very fascinating variety of humans.
170:52
Yes, we have a really fascinating variety of humans.
170:54
That's a good way of putting it. Yeah.
170:57
So, it made me put in my mental map of like it's a cool
171:00
place to go and visit when in New York. Yes.
171:03
You have to come see us.
171:05
I think you would love it.
171:06
Also, I should mention fashion.
171:08
I've seen you do a bunch of talks and there's there's a lot of fashion. Yeah.
171:12
Oh, appreciation of fashion going on.
171:14
I am so you're giving me an opportunity to give a shout out
171:18
um to Andrea Lara who's a
171:20
designer who makes these
171:22
amazing jumpsuits that I often wear
171:25
in a lot of my events.
171:26
She has a jumpsuit
171:27
um design line called Risen Division and she just makes these incredible. They're fantastic.
171:33
We also design patches for all of our events.
171:36
So there are these string theory patches and consciousness
171:38
patches and we should show this as overlays.
171:42
Hopefully there'll be nice pictures floating about everywhere.
171:44
So, you know, I think all of this is is just I just like
171:47
to experiment with life.
171:49
I think making the magazine was a big wild experiment.
171:51
You said with life. With life. Nice. Yeah.
171:55
Um this kind of idea that we were just describing
171:57
is I I I
171:59
find it hard to stop the momentum
172:01
if I think something can I can make something.
172:05
Um I have to try to make it.
172:08
Um, and to me this is the closest I come to experimentation
172:11
and collaboration because even though I I collaborate
172:15
theoretically, I have great collaborators,
172:16
Brian Green, Masimo Paratti,
172:18
Dan Kat, these are my really close collaborators.
172:21
Um, a lot of
172:23
theoretical physics is alone and
172:25
you're in your mind a lot.
172:26
Um, this is something that really
172:29
was was was built this triad of Dustin, Gabe, and I and
172:34
all our amazing people who work there and our amazing board.
172:37
we really are doing it together.
172:38
You take one element out and it starts to
172:41
um it starts to change shape and that's a very interesting
172:44
experience I think and
172:46
making things is an interesting experience.
172:49
Since you mentioned literature, is there is there books that had an impact on
172:52
your life, whether it's literature, uh, fiction, non-fiction.
172:58
I love fiction, which I think people expect me to read a lot of
173:02
sort of sci-fi or non-fiction.
173:04
I mostly read fiction.
173:05
I had a syllabus
173:07
of great fiction writers that had
173:10
science in it and
173:12
um, I love that syllabus.
173:13
Can you ever make that public or no?
173:15
Yeah, I suppose I could, but I can tell you some of them as
173:18
they come to mind.
173:19
Um, Katsu Ishiguru, who won the Nobel Prize, wrote Remains of the Day, probably most famously.
173:24
Um, his book Never Let Me
173:26
Go, it's unbelievable, totally devastating, stunning. I see.
173:32
I really love literature.
173:34
So, when when people can do that with these very abstract
173:36
themes, um, it's sort of my favorite
173:39
space for for literature.
173:41
Martin Amos wrote a book that runs backwards, Times Arrow.
173:45
I love some of his other books even more, but Times Zero is pretty clever.
173:49
So, you like it
173:50
when uh these non-traditional
173:53
mechanisms are applied to tell a story that's fundamentally
173:56
human that there's some Yes.
173:59
some beauty of language like I really appreciate that.
174:04
Even Orwell is amazing.
174:06
You know, Hitchens writing on Orwell is amazing.
174:09
Um there was there were some plays on the syllabus.
174:13
I have to think of what else was in there.
174:15
But there was one book that I think was kind of surprising that I
174:18
think is an absolute masterpiece
174:19
which is the road.
174:21
And you might say in what sense is the road to science?
174:23
Well, first of all, Cormick McCarthy
174:25
absolutely loves scientists and science.
174:27
And you can feel this very subtle influence
174:29
in that book is
174:31
um it's it's an
174:35
remarkable uh precise, stunning,
174:40
ethereal, all of these things at once.
174:42
And there's no who, what, where, when, or how.
174:45
Um, you might guess it's a nuclear event that kicks off the book or
174:50
a lot of people know the road I I think from the movie, but
174:52
really the book is magnificent.
174:55
Um, and it's very very abstract,
174:57
but there's a sense to me in which it is
174:59
science is structuring the and still fundamentally
175:02
that book is about
175:04
the human story, the human connection. Boy, yeah.
175:07
So, the science plays a role in creating the world
175:10
and within it there's still
175:12
really it's it's a it's a different way
175:15
to explore human dynamics in a way that's
175:18
maybe land some clarity
175:21
and depth that maybe a more
175:24
direct telling of the story would not Yeah. Yeah.
175:28
even surreal worlds that I mean to me
175:31
I don't know why but um I return to Orwell's
175:34
Animal Farm a lot and there's these kind of like
175:37
it's another art form to be able to tell a simple story
175:41
with some surreal elements. Mhm. Yeah.
175:44
Well, just simple language. Mhm.
175:46
Oh, animal form is incredible.
175:48
And in fact, some of the
175:50
I've kind of played with you know some animals are more equal than others.
175:53
There are there are in good old Turring's
175:56
work there were some infinities that are bigger than others.
176:00
Yeah, there certain books just kind of
176:03
inject themselves into our culture in a way that just rever reverberates
176:07
and uh I don't know
176:10
hasn't creates culture not just like influences.
176:14
It's just like it's quite incredible how
176:17
writing and literature can do that. Yeah.
176:20
If you could have one definitive answer to one single question.
176:23
This is the thing I mentioned to you. So hard. Yeah.
176:26
Well, there's a there's an oracle
176:28
and you get to talk to that oracle.
176:30
You can ask multiple questions, but it has to be on that topic. So, just clarify.
176:35
What What mystery of of the universe would you want that oracle to help you with?
176:40
You know, it's funny.
176:41
I should say the obvious thing
176:43
and but I feel like I almost feel like it would be greedy.
176:46
I I think I have a complicated response to this.
176:49
The obvious thing for me to say would be I want to understand quantum
176:52
gravity or if gravity's emergent.
176:55
Um it's not even something I work on daytoday.
176:58
You know I I mostly
177:00
just look with interest at what others are doing and if I think I
177:03
can jump in I would but I'm not jumping into the fray.
177:06
But obviously that's the big that's the big one and and there is a
177:10
sort of sense that
177:11
with that will come the answers to all these other things.
177:14
My complicated relationship is that well, you know, part of the scientific
177:18
disposition isn't having stuff you don't know the answer to.
177:22
I mean, we're not going to have all the answers.
177:24
I hope because then
177:26
sort of then what, right?
177:28
It's sort of dystopian.
177:30
I totally agree with you.
177:31
There's some I like the mysteries we have. Yeah.
177:35
Uh I kind of had this assumption that there will always be mysteries, so
177:38
you want to keep solving them.
177:40
They will lead to more.
177:41
In the same way that relativity
177:43
led to black holes, black holes led to the
177:45
information loss paradox or the big bang or what happened before or the multiverse.
177:50
It's because we learned so much we were able to escalate to the next level of abstraction. Yeah.
177:55
Yeah, by the way,
177:56
we should mention that if you're talking historical and even if you ask the
178:00
obvious question about quantum gravity,
178:01
I almost guarantee with 100%
178:04
probability that even if all your questions are answered,
178:09
it's impossible to get
178:11
to the end of your questions
178:13
because it says um you know Oracle will say no, you can't
178:18
But then you say well wait yeah yeah yeah and then you say emergent
178:22
and then the or
178:23
you know Oracle say well
178:25
uh everything you think is fundamental is not it's emergent.
178:28
It's like okay well this is this is we need to
178:31
more questions right I mean it's been a hundred years more
178:35
since relativity and we're still picking it apart. Yeah.
178:38
No and there will be
178:40
there may be new ones. Mhm.
178:42
You write that eventually
178:44
all our history in this universe will be erased.
178:47
M how does that make you feel?
178:50
Yeah, that's a tough thought.
178:52
But again, I think there's
178:54
a way in which we can come to terms with that that that's kind of poetic.
178:59
You know, you build something in the sand and then you erase it. Yeah.
179:06
So, I think it's just a reminder that
179:08
we have to be concerned about our
179:11
immediate experience too, right?
179:14
how we are to those around us,
179:17
how they are to
179:19
us, what we leave behind in the near term, what we leave behind in
179:23
the long term, have we contributed
179:25
and and did we,
179:28
you know, did we
179:30
contribute overall Um eventually
179:36
I think it's kind of hard to imagine
179:39
but yes all of these Nobel prizes
179:42
all of these mathematical
179:43
proofs all of these conversations
179:46
all these ideas all the influence we have on each other even the AI eventually will expire.
179:53
Well at the very least we can uh focus on
179:56
drawing something beautiful in the sand. Yeah.
179:58
Before it's washed away.
180:01
Well, this was an incredible conversation.
180:03
I'm truly grateful for the work you do and me for your work.
180:06
Thanks so much for having me.
180:07
Thank you for talking today.
180:09
Yeah, lots of fun.
180:11
Thanks for listening to this conversation with Channel 11.
180:13
To support this podcast,
180:15
please check out our sponsors in the description.
180:18
And now, let me leave you with some words from Albert
180:21
Einstein on the topic of relativity.
180:25
When you're courting a nice girl,
180:27
an hour seems like a second.
180:30
When you sit on a red hot cinder,
180:32
a second seems like an hour. That's relativity.
180:37
Thank you for listening
180:39
and hope to see you next time.
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