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Veritasium
There Is Something Faster Than Light
There Is Something Faster Than Light
Veritasium
·
44:15 · 19 thg 12, 2025
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In
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0:00
- In 1935.
0:01
Einstein came up with a thought experiment
0:02
that showed quantum mechanics breaks one of the most sacred principles in physics,
0:07
that nothing can go faster than the speed of light.
0:10
Physicists assumed he was wrong.
0:12
They thought that at 56 Einstein was an old man,
0:15
past his prime and just unable to accept the new theory of physics
0:20
because it was too radical.
0:22
But 30 years later,
0:24
one man stumbled across Einstein's forgotten paper when he realized something,
0:28
the prediction could actually be tested.
0:30
When scientists ran the experiment, they were shocked.
0:34
Quantum physics really does break the universal speed limit. - We are obliged to
0:38
invoke something like actions going faster than light from one place to another. -
0:43
This is a video about one of the spookiest
0:46
and most misunderstood experiments in all of physics,
0:50
and it might even be the strongest evidence we have
0:53
that we live in many worlds.
0:57
If the sun were to disappear all of a sudden,
1:00
how long would it take until we noticed and were released out into space?
1:04
Newton's theory says that gravity acts instantly across any distance,
1:08
so if there's a change in gravity, we should feel it immediately.
1:12
But Newton himself was disturbed by this.
1:15
That one body may act upon another at a distance is to me
1:19
so great an absurdity
1:20
that I believe no man who has a competent faculty of thinking can ever
1:24
fall into it.
1:26
But in 1905, Einstein realized action at a distance isn't just absurd,
1:31
it leads to outright paradoxes.
1:34
Einstein had discovered that observers moving at different speeds can disagree about
1:38
when events happened.
1:39
Let's say you see two things happen at the same time.
1:42
An observer speeding past would see it differently.
1:44
To them, one of these happened first,
1:47
and both points of view are equally valid, but in the case of gravity,
1:51
this leads to disaster.
1:53
Say you see the sun disappearing
1:54
and earth flying off at the same time
1:56
as Newton predicted,
1:58
then the other observer sees something impossible.
2:01
They see the earth flying off first,
2:02
even while the sun is still there
2:04
and it should of course be pulling the earth in.
2:07
So to them, it looks like cause and effect are reversed.
2:10
The only way out of this paradox is to reject the assumption we started
2:13
with.
2:14
So gravity can't be instant.
2:17
It took Einstein 10 years to fix this issue,
2:19
and in the process he completely overhauled our understanding of gravity.
2:23
Gravity is caused by the bending of spacetime.
2:26
When there's a change in gravity that only affects the local space time,
2:30
and then that ripple spreads out to nearby regions
2:33
which spread farther out until eventually they reach us.
2:36
This theory of gravity is local
2:38
because effects spread from place to place at the speed of light instead of
2:42
being instant from our frame of reference.
2:45
If the sun disappeared, that ripple would take about eight minutes to reach us.
2:49
Another observer might disagree about the length of the delay,
2:52
but now we all agree that the sun disappeared first.
2:55
This is why nothing can go faster than light.
2:58
The delay between cause and effect ensures all observers agree on the order.
3:02
After Einstein fixed gravity, all of classical physics obeyed this important rule.
3:07
But then Einstein studied the new theory of quantum mechanics
3:11
and made a terrible discovery.
3:15
This is one of the most famous photographs in physics.
3:17
It was taken at the 1927 Solvay Conference where the architects of the brand
3:21
new quantum theory gathered to discuss it.
3:24
Around 60% of the attendees would win Nobel prizes,
3:27
but Einstein thought they'd gotten something fundamentally wrong
3:31
and this was his chance to prove it.
3:33
So he took to the stage with a thought experiment.
3:35
Imagine you fire a single electron through a narrow slit toward a circular detection
3:40
screen.
3:41
Well, quantum mechanics says
3:42
that this electron has some sort of wave associated with it called a wave
3:45
function,
3:46
which spreads out through space as it travels.
3:48
When the electron hits the screen, you detect it at a single point.
3:52
Where it turns up depends on the amplitude of the wave.
3:55
If the wave is very big in a particular area,
3:58
the electron is more likely to turn up there.
4:00
Let's say it appears here, so far, everyone was following.
4:04
This is what quantum mechanics predicts, but Einstein's next question surprised them.
4:09
Why doesn't the electron turn up at this other spot a moment later?
4:12
There's only one electron, so we can't detect it twice,
4:15
but the way quantum mechanics ensures this is
4:17
that when the electron was detected at the first spot,
4:20
its wave function collapsed to zero everywhere else instantly.
4:24
That's why the probability of finding it at the second spot is now a
4:27
zero.
4:27
There's no longer any wave there,
4:30
but Einstein asked the audience to think about what this means.
4:33
The measurement here must instantly affect the wave function over here no matter how
4:38
far apart these locations are.
4:40
In other words, quantum mechanics requires instant influences across distance.
4:45
It violates locality.
4:48
Einstein concluded his talk by saying this is an entirely peculiar mechanism of action
4:53
at a distance,
4:54
and that this implies to my mind a contradiction with the postulate of relativity.
4:59
Einstein's argument was so simple
5:00
and his talk so short
5:02
that people didn't know what to make of it.
5:04
One audience member said,
5:05
'I feel myself in a very difficult position
5:07
because I don't understand what precisely is the point
5:10
which Einstein wants to make.
5:12
No doubt it is my fault.'
5:14
That man was Niels Bohr,
5:15
the most influential figure in quantum physics at the time.
5:21
Bohr's Institute in Copenhagen had become the hub for the new field.
5:25
Dozens of young scientists like Werner Heisenberg came to learn from him.
5:28
As one of his disciples remembers,
5:30
'Bohr had invited a number of us to his home where we sat close
5:34
to him,
5:34
some literally at his feet on the floor
5:36
so as not to miss a word.'
5:38
Bohr wasn't the one who wrote the mathematical rules of quantum mechanics.
5:42
Instead, he told everyone what they meant.
5:44
While others were confused by the theory Bohr offered answers,
5:48
his philosophy became known as the Copenhagen interpretation of quantum mechanics.
5:52
My general understanding of the Copenhagen interpretation is you have the wave function,
5:57
it describes everything that you can know about a particle or a system,
6:01
and it evolves according to the Schrödinger equation.
6:04
And at some point you're gonna make a measurement
6:06
and at that point the wave function collapses. - I think
6:09
that one bit of
6:10
that that you said was like the wave function is all you can know
6:14
about the particle,
6:15
and I think that was like a pretty important point to Bohr. -
6:18
As Bohr would put it.
6:19
'It's wrong to think
6:20
that the task of physics is to find out how nature is.'
6:23
The job of physics is just to predict measurements in the lab,
6:26
which quantum mechanics does incredibly well
6:29
as for what the electron is doing
6:31
when you're not looking well to Bohr,
6:33
that question didn't even make sense to ask.
6:36
The wave function tells you everything physics can or should tell you.
6:41
Einstein couldn't stand the Copenhagen interpretation In a letter to his ally Schrodinger,
6:45
he called it a tranquilizing philosophy or religion.
6:49
Einstein felt his thought experiment exposed a critical weakness in the Copenhagen interpretation.
6:54
He'd shown that the way the wave function collapses is non-local,
6:57
and so he reasoned maybe the wave function is the problem.
7:00
Maybe it's not the best way to describe the electron.
7:03
After all, he may not have convinced Bohr of this during his talk,
7:06
but he was determined to do it during the rest of the conference. -
7:09
Physicists tell a version of this story,
7:13
you know that you will find in physics textbooks
7:15
and in pop science books
7:16
and that you know physicists tell amongst ourselves
7:20
that what happened was Einstein
7:22
and Bohr had a great debate
7:25
and Einstein was unhappy with quantum mechanics
7:27
because it was fundamentally probabilistic.
7:30
He tried to show
7:31
that there were conceivable experiments
7:32
that you could use to get around those uncertainty relations
7:35
and Bohr showed over
7:36
and over and over again
7:37
that you couldn't do
7:38
that.
7:39
And eventually everybody agreed with Bohr. - That's Adam Becker, author of What is Real,
7:45
a great book about the history of quantum mechanics.
7:48
As he explained to us,
7:49
Bohr may have just misunderstood the purpose of Einstein's thought experiments.
7:53
We have documented evidence of this in at least one case.
7:56
Einstein described a thought experiment that involved a box of photons and a mirror.
8:00
Its purpose was to show the non-locality of the Copenhagen interpretation in action. -
8:05
Bohr just misunderstood it,
8:07
and when he recounted it to others later on,
8:11
he drew a little diagram of what Einstein's thought experiment setup was,
8:15
and it just didn't have the mirror in it at all.
8:18
And yet this is taken as like the great victory for Bohr over Einstein,
8:22
which is crazy, but history is written by the victors right - To understand
8:27
what Einstein was arguing for.
8:29
Think of the relationship between Newton's gravity and general relativity.
8:32
Newton's theory works well in most situations, but in that theory,
8:36
gravity is a non-local force leading to paradoxes.
8:39
This was the motivation for coming up with Einstein's general relativity, which is local.
8:43
Einstein believed the same logic applied to quantum mechanics.
8:46
His thought experiment revealed that quantum theory is non-local.
8:49
So just like with Newton's gravity, quantum mechanics must not be the final theory.
8:53
There must be a local one that replace it, and as a bonus,
8:57
he thought this new theory might even unify gravity, with the quantum world.
9:01
It would be hard to imagine coming to the final theory right away.
9:04
And yeah, and the fact that you can see paradoxes like this,
9:08
would make you think there's gotta be more to it
9:10
that we just don't have yet. - Absolutely.
9:12
But Einstein hadn't even persuaded Bohr that quantum mechanics really is non-local.
9:16
So in 1935, he made one last attempt to convince the community
9:20
that there was a contradiction between quantum mechanics
9:22
and relativity.
9:23
With the help of two younger colleagues, Boris Podolsky and Nathan Rosen,
9:27
he formulated another even more striking thought experiment
9:30
that shows the non-locality of quantum mechanics.
9:33
This paper is now known as the EPR paper after its authors.
9:39
Here is a simplified version of their thought experiment.
9:42
Imagine a single high energy photon suddenly becomes two particles.
9:45
One of them is an electron and to conserve total charge.
9:48
The other is a positron since one is negative and the other is positive,
9:52
they cancel out.
9:53
But both electrons and positrons have a property called spin and like electric charge,
9:58
this also needs to be conserved.
10:00
If the light started out with zero spin,
10:02
well then the two particles together must have zero total spin as well.
10:06
For example, if the direction of the electron spin is this,
10:09
the positron has to have spin in the opposite direction
10:12
so that they perfectly cancel out.
10:14
But the electron spin could have been this instead or this.
10:18
All of these possibilities are valid.
10:20
So the rules of quantum mechanics say
10:22
that the electron does all of these possible things at once until it's measured.
10:25
It's not just that we don't know what the spin is,
10:27
the electron really is doing everything.
10:30
The only restriction is whatever the electron is doing.
10:33
The positron must do the exact opposite.
10:36
This also means that when the electron is measured and its state is determined,
10:40
so is the positrons.
10:42
This is what we mean by entanglement.
10:44
The two particles states depend on each other.
10:46
But how do we measure the particles and force them to do one thing?
10:50
Well for that we use the Stern-Gerlach machine.
10:53
It's essentially a strangely shaped magnet and it's how we measure spin.
10:57
The orientation of the magnets determines what axis you're measuring the spin in.
11:02
For example, if the machine is like this
11:04
and we shoot in a particle with spin in the positive Z direction,
11:07
it will certainly go to this spot we'll call plus.
11:10
If instead a particle has negative Z spin,
11:12
it will certainly go down to minus.
11:15
So this Stern-Gerlach machine measures spin in the Z axis.
11:19
So what happens when we put in one of our entangled particles?
11:22
When the electron goes into this machine,
11:24
it either goes to plus or to minus.
11:26
With 50/50 probability, let's say our electron goes to plus.
11:30
Well, this means it went from being in an indeterminate state to positive Z
11:34
spin.
11:35
But what about the positron?
11:37
Well, the only way to conserve spin is
11:38
if it's now in the negative Z spin state.
11:41
When it's measured, there is a 100% chance it's minus.
11:45
It has to be that way to conserve spin.
11:47
But the authors of the paper realized there's something very odd about this result.
11:52
- To see what's wrong with this let's imagine
11:54
that the electron and the positron carry these envelopes with them.
11:58
These envelopes represent the state of the two particles.
12:01
Until they're measured, both of the particles are in a superposition of being plus
12:06
and minus at the same time.
12:08
So both options are in the envelope,
12:18
but now let's move the positron to someone who's far far away.
12:24
In this analogy, opening the envelope is like measuring the spin of the electron,
12:29
but that causes the wave function of the electron to collapse to just one
12:34
possibility.
12:35
In this case, it's plus, but what happens to the other envelope far away?
12:42
Well, it needs to instantly collapse to minus
12:45
because otherwise when the experimenter opens their envelope,
12:48
they have a chance of seeing plus, which would violate the conservation of spin.
12:53
But if it needs to collapse instantly when the electron is measured,
12:58
then how does it know what to collapse to?
13:00
It must receive intel from the far away electron,
13:03
but that message has to travel much faster than the speed of light to
13:08
get to the positron in time.
13:10
And so with this argument,
13:11
Einstein Podolski and Rosen had shown
13:14
that the Copenhagen interpretation of quantum mechanics really is non-local.
13:19
Einstein had already shown this in his conference talk,
13:22
but this argument was even more decisive. - It does seem like it's the
13:27
same thing,
13:28
but now it's ramped up
13:30
and you've got these two separate particles to do those two separate measurements
13:34
and one measurement influencing the other measurement definitely feels wrong. - Yeah,
13:37
exactly.
13:38
I think he really realized
13:39
that it's measurements that are the problem in quantum mechanics. - The wave function
13:43
of a single particle
13:44
or of this pair of particles can end up spread over vast distances.
13:48
That isn't itself an issue, but when the wave function collapses,
13:51
the information about that collapse needs to spread everywhere.
13:55
The wave function is that's what makes quantum mechanics non-local. - The EPR paper
14:00
didn't just point out this non-locality issue.
14:02
They proved that there is only one local alternative theory for explaining this experiment
14:09
in this local story.
14:10
Instead of the electron choosing whether to be plus or minus when it's measured,
14:15
it actually makes that choice when it's still in contact with the positron.
14:19
There's some random way
14:20
that this plus or minus gets put into these two envelopes,
14:29
which is why the plus and minus are called hidden variables.
14:32
And because this alternative theory assigns these hidden variables in a local way,
14:37
while they're still in contact with each other rather than over a big distance,
14:41
we call this a local hidden variable theory.
14:45
Now, this local hidden variable theory is going to be able to explain this
14:48
experiment really simply.
14:50
Let's pass away the positron,
14:55
and now when the electron is measured as a plus,
14:59
it doesn't have to rush to tell the positron.
15:01
The positron already knows, there is no action at a distance.
15:07
This local hidden variable story is
15:09
so much more sensible than the quantum one. -
15:12
So we're forced to accept one of two explanations for this experiment.
15:16
Either non-locality like the Copenhagen interpretation of quantum mechanics
15:20
or a local hidden variable theory given
15:24
that non-local action at a distance contradicts relativity.
15:27
Einstein thought this was definitive proof
15:29
that the Copenhagen interpretation of quantum mechanics is wrong,
15:32
and therefore there must be some local hidden variable theory that will replace it.
15:37
Einstein showed us that quantum mechanics allows influences
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and now back to Bell's theorem.
17:00
The EPR paper certainly got a lot of attention.
17:03
Without asking Einstein, Podolsky leaked the paper to the press
17:06
and the story ended up in the New York Times - Prodigious harvest of
17:10
the day's. intelligence is reached. - Extra,
17:12
extra - read all about it.
17:14
Einstein was the most famous scientist in the world,
17:17
and he was going after the strange but successful theory of quantum mechanics.
17:20
So of course the press loved it.
17:22
But what did scientists think of the argument itself? -
17:28
So the reaction of the physics community was at first mixed.
17:32
You know, there were some people,
17:33
sort of old allies of Einstein's who were very happy with it.
17:38
Schrodinger being sort of at the top of that list.
17:40
And in fact, in an attempt to clear up some of the misunderstandings
17:44
that people were having about the EPR paper,
17:46
Schrodinger publishes the thought experiment known as Schrodinger's cat,
17:50
sort of back up Einstein
17:51
and show the kind of problem
17:54
that he and Einstein had with quantum physics.
17:58
Or meanwhile, it's like, oh my God, what?
18:00
What the hell is this?
18:02
He must be wrong.
18:03
How do we show that he's wrong?
18:05
Then Bohr ultimately, you know,
18:07
in his sort of painful
18:08
and complicated style ends up coming up with a response to the EPR paper.
18:14
This response is sort of famously obscure
18:16
and difficult to understand
18:18
and and I have,
18:19
I have read it in detail
18:20
and I will tell you Bohr's reply is either nonsensical
18:25
or makes some actual mistakes. - There is a very well turned sentence,
18:30
which I believe Bohr took a great deal of trouble in formulating,
18:34
and his meaning is just absolutely obscure to me. - Bohr said in his
18:40
reply to EPR,
18:41
in his multiple replies to EPR,
18:43
that there is no question of anything non-local going on.
18:47
So the ultimate reaction of the physics community,
18:50
at least in the immediate years
18:51
and decades following the publication of EPR
18:54
and Bohr's reply in 1935,
18:56
was to think that Bohr had settled it with his reply,
19:00
even though people didn't really understand what Bohr had said. - Two decades later,
19:06
Einstein died still questioning quantum mechanics,
19:09
but the majority of the physics community had moved on without him.
19:13
Bohr however, never forgot about the EPR paper.
19:16
In 1962, 7 years after Einstein's death,
19:20
Bohr gave an interview about Einstein
19:22
and he lamented that Einstein wasted decades on fruitless thought experiments
19:26
because he simply could not accept quantum mechanics.
19:29
'It was terrible that Einstein fell in
19:31
that trap to work with Podolsky' Bohr said,
19:34
Rosen is worse from my point of view, Rosen,
19:36
even today believes the EPR thought experiment.
19:39
Podolsky has given it up, as far as I know.
19:41
The whole idea is absolutely nothing.
19:43
When one really gets into it,
19:46
you may think that I say it too strongly, but it is true.
19:49
There's absolutely no problem in it.
19:52
The next day, Bohr took a nap after lunch and never woke up,
19:56
and so after many decades, the Einstein-Bohr debate was over.
20:01
Bohr's authority was part of the reason the EPR paper didn't get the attention
20:05
it deserved.
20:06
But there was another reason physicists ignored it.
20:08
In the EPR experiment, both theories,
20:10
Copenhagen Quantum Mechanics and Einstein's local hidden variable alternative make exactly the same prediction.
20:16
You get the same results either way,
20:18
debating two different interpretations of the same experimental result seemed like armchair philosophy,
20:24
not real physics.
20:25
The Copenhagen interpretation makes good predictions,
20:27
so why not just teach that and move on?
20:30
It just seems like, you know, shut up and calculate,
20:33
I think is the message that kind of gets pushed. - General attitude was,
20:37
this is done, who cares?
20:40
None of this matters.
20:41
It's all settled.
20:43
Einstein and Bohr had a big debate about it and Bohr won.
20:46
Do you think you're smarter than Niels Bohr?
20:49
Do you think you're smarter than Albert Einstein? - It seemed like it would
20:52
be impossible to resolve this debate until another physicist turned his attention to it.
20:58
John Bell was an undergraduate student shortly after World War II in this new
21:02
era of physics,
21:03
and so of course,
21:04
he was taught the Copenhagen Interpretation. - John Bell's doubts about quantum mechanics by
21:09
his own recollection,
21:11
showed up basically the minute he learned it.
21:14
In his first quantum mechanics class, he was, you know,
21:18
getting pretty upset with the instructors and saying, you're being too vague.
21:23
What the heck do you mean about measurement? - Bell was never fully satisfied
21:27
by the answers he got about the foundations of quantum mechanics.
21:30
But when he was doing his PhD,
21:32
he was encouraged to study something a little bit more respectable,
21:35
and so he studied nuclear physics
21:37
and went on to have a very accomplished career at Cern.
21:40
But after eight years of working in particle physics, in 1963,
21:43
he took an academic sabbatical
21:45
and finally he had time to focus on his doubts about quantum mechanics.
21:50
He said, I always knew that it was waiting for me.
21:54
He began by re-examining the old debates
21:56
and the papers that most physicists had long since dismissed
21:59
as philosophical distractions,
22:01
including the EPR paper.
22:03
After this research, he said,
22:04
'I felt that Einstein's intellectual superiority over Bohr in this, instance was enormous;
22:09
I've vast gulf between the man who saw clearly what was needed
22:13
and the obscurantist.'
22:14
He realized Einstein's logic was sound.
22:17
One of the two conclusions is true.
22:19
The question was, could you prove which one, using an experiment?
22:23
An experiment of this sort seemed much more feasible by Bell's time.
22:27
The EPR paper was the first to consider the idea of entanglement.
22:31
These days, entanglement is a core feature of quantum mechanics,
22:34
but Einstein had been first to even point out entanglement existed.
22:38
This is why the EPR paper was set up
22:40
as a thought experiment
22:41
because no one had made such an exotic state of matter in 1935.
22:46
But in the intervening decades between Einstein's work and Bell's between 1935 and 1964,
22:51
entanglement had become a serious topic of study.
22:54
By Bell's time, there were reliable ways to make it in the lab.
22:57
In fact, Madam Wu had famously reproduced the EPR thought experiment
23:01
as a real experiment,
23:03
but simply doing the EPR experiment in real life isn't enough to tell you
23:06
which explanation is correct since both predict the same thing.
23:11
But Bell wondered if there was another version of the experiment where the non-local
23:15
and local theories would have to give a different result. -
23:18
If you're asking that question
23:19
and you're playing with the EPR setup,
23:21
then it's like, oh, it's literally not just figuratively a twist.
23:26
Right? - Here's a simplified version of bell's experiment,
23:31
make your entangled electron and positron again.
23:33
But now, instead of just measuring them with a Stern–Gerlach machine like this,
23:37
the experimenters get a choice about how to orient their machine.
23:41
The three different choices are zero degrees, 120 degrees and 240 degrees.
23:46
This is the twist on the EPR experiment.
23:49
The experimenters get to choose independently,
23:52
so the electron might be measured at zero degrees
23:54
while the positron is measured at 240 degrees.
23:58
If both experimenters happen to choose the same axis, then we know what happens.
24:02
They have to get the opposite result as each other to conserve spin.
24:06
The interesting case is when the experimenters happen to choose different axes,
24:10
the number we want to predict here is the disagreement rate,
24:13
the probability that the electron's result is different from the positron's.
24:16
At first, let's see what quantum mechanics predicts for this number.
24:23
Let's say the electron is measured with the zero degree axis
24:26
and comes out as plus.
24:28
Now that its spin has collapsed to positive Z,
24:30
the positron spin needs to instantly collapse to be negative Z.
24:34
This is the non-local part of quantum mechanics,
24:36
but what happens when this positron is measured by a machine tilted at
24:40
that the positron spin is already almost facing the plus end of the machine,
24:40
so it's much more likely to go to plus.
24:40
In fact, there's a 75% chance it goes to plus
24:40
and only a 25% chance it goes to minus.
24:40
So the disagreement rate is 25%.
24:40
And we can show that for any two different axes, the experimenters select,
24:42
the geometry is analogous.
24:43
So they all have this same disagreement rate of 25%.
24:43
Anytime the experimenters choose different axes,
24:45
they will get the same outcomes 75% of the time
24:45
and different outcomes 25% of the time. - Now,
24:45
let's consider the local hidden variable alternative theory.
24:45
The particles here are on a mission,
24:45
their aim to make you believe
24:45
that they're acting according to quantum mechanics
24:45
when really they're acting locally.
24:45
Now we are anthropomorphizing,
24:45
but I think it is really useful to just imagine them this way.
24:45
We're trying to figure out
24:45
if it's always possible for them to use a hidden variable theory to get
24:47
the same experimental outcomes
24:47
as Copenhagen quantum mechanics,
24:47
or if in this new situation our scheming particles won't be able to fool
24:49
us.
24:49
You can think of it like this.
24:49
Each of the particles is gonna be asked one of three possible questions,
24:49
and they need to decide on their answer
24:49
while they're still together
24:49
so that they can coordinate on their strategy.
24:49
When they're done figuring out a plan for how they would answer any of
24:49
the three questions,
24:49
they pack away those hidden variables into three sealed envelopes for each particle.
24:49
The question is, what strategies should our sneaky particles take to make people believe
24:49
that they're following quantum mechanics?
24:49
Remember, quantum mechanics predicted a disagreement rate of 25%,
24:49
and so our particles want to match that.
24:49
Whenever they happen to be asked different questions,
24:49
their answer needs to disagree about 25% of the time.
24:49
So what's the best strategy?
24:49
Well, there's actually only two things that they really can do.
24:49
The first strategy is this.
24:49
The electron answers the same way for each of its axes
24:49
and the positron answers in the opposite way.
24:49
Let's say the electron answers with minus and the positron with plus.
24:49
But this is a terrible idea
24:49
because whatever two different axes the experimenters happen to choose,
24:49
the disagreement rate is a hundred percent, which is very different from 25%.
24:49
And so that strategy doesn't work,
24:49
but there's only one other strategy that the particles could use.
24:49
Instead of the electron doing exactly the same thing for all three axes,
24:50
it does the same thing for any two of its axes
24:51
and then something different for the last one,
24:51
let's just say for example,
24:51
that it does this and then the positron does the opposite.
24:51
This is just one example,
24:51
but it turns out for all possible strategies like this,
24:51
the disagreement rate is gonna be the same.
24:51
Let's imagine first that the experimenter who's measuring the electron happens to measure it
24:51
in the 120 degree axis,
24:51
and it gets the answer minus they make this choice a third of the
24:52
time.
24:52
And now to calculate the disagreement rate,
24:52
we need to see what happens
24:52
when the experimenter who's measuring the positron happens to measure a different axis from
24:52
this one.
24:52
So one of these two, but in either one of these cases,
24:52
the positron is also a minus,
24:52
and so the two answers agree with each other,
24:52
and so the answers have no disagreement.
24:52
And so we can multiply this by zero, but two thirds of the time,
24:52
the experimenter who's measuring the electron will happen to measure it in one of
24:53
the other two axes.
24:53
Let's say this one,
24:53
the experimenter measuring the positron will measure in one of these two axes,
24:53
but you can see
24:53
that they only pick an axis
24:53
that disagrees a half of the time.
24:53
That's one third, which is roughly equal to 33%,
24:53
which is a different number from the quantum one.
24:54
When our scheming local particles are interrogated,
24:54
their answers for different questions match just a little too often.
24:54
They simply can't fake the results of Copenhagen quantum mechanics. -
24:54
So Bell's proof showed
24:54
that non-local and local theories make different predictions about how often the two results
24:54
will disagree,
24:54
when the experimenters measure different axes.
24:54
Non-local quantum mechanics predicts disagreement only 25% of the time.
24:57
Local hidden variables predicts disagreement at least 33% of the time
24:57
So to find out
24:57
if there really is a local hidden variable theory,
24:57
you just need to do the experiment. - Okay, so welcome at the Institut d'Optique.
24:57
You are here in the place where Alain Aspect performed forty years ago,
24:57
his experiments on the measurement of Bell's inequalities,
24:57
and here are some of the original pictures of this experiment.
24:57
Which was much more challenging than it is today,
24:57
and it was a real experimental tour de force. -
24:57
So is this one of the original equipment from
24:58
that? - This is one of the,
24:58
yeah, of the polarizers.
24:58
It looks like that now.
24:58
So only on this small breadboard, right?
24:58
This is our main source and this beam is directed towards this element,
24:58
which is the key element of the setup.
24:58
So it's a pair of crystals that produces pairs of entangled photons.
24:58
We will produce a pair of entangled photons
24:58
and both are propagating along each of these two arms.
24:58
They're separated.
24:58
So here we have the two detection arms
24:59
and we can rotate the halfway plate to change the orientation of the measurement
25:01
basis. - The experiment
25:01
that we did with light was a little bit different from the one we
25:01
described earlier with electrons
25:01
and protons,
25:03
so I'm gonna explain how they correspond.
25:03
Here's a little diagram of the photon experiment.
25:03
So first, we have this element that makes the entangled pair of particles,
25:06
so that's these two.
25:06
Then the entangled particles go off on separate arms of the experiment.
25:08
In our previous experiment,
25:08
we could decide the direction
25:08
that we're going to measure the particles in by rotating the Stern–Gerlach machines.
25:08
And in this experiment, it's actually really similar.
25:08
So we have these two polarizers that we're able to rotate independently,
25:08
and that is gonna decide which direction these particles are measured in.
25:08
And so this experiment with light is completely equivalent to Bell's experiment. - Bell
25:08
expected that the,
25:08
that the experiments would show
25:08
that the predictions of quantum mechanics were correct
25:08
and that,
25:08
you know, there was some kind of non-locality in nature - Before the first
25:08
Bell test was done.
25:08
John Bell said, in view of the general success of quantum mechanics,
25:08
it's very hard for me to doubt the outcome of such experiments. - He
25:08
didn't expect quantum physics to be wrong,
25:08
because who would bet against quantum physics?
25:08
You'd have to be crazy. - Remember,
25:08
the two different outcomes for Bell's theorem depend on how often two different measurement
25:09
axes are going to have results
25:10
that disagree with each other.
25:10
Here's how we measure that disagreement rate.
25:10
First, we're gonna start with both of the measurements being in the same direction,
25:10
and now we expect
25:10
that these two are always gonna disagree with each other
25:10
because they have opposite spins.
25:10
Though we're gonna create a bunch of entangled particles
25:12
and find out how many of them disagree with each other per second.
25:14
This is going to give us a measure of the total number of particles
25:15
coming per second.
25:15
That's because this device is making loads and loads of entangled particles,
25:15
and so we just need to know how many of them are coming at
25:15
a time.
25:16
Then we rotate one of the axes,
25:17
and now we measure the number of disagreeing pairs per second,
25:17
and then dividing these two will give us the disagreement rate.
25:17
And remember, quantum mechanics predicts that the disagreement rate will only be a quarter,
25:17
whereas local hidden variables expects this number to be a third. -
25:18
So I started at 2000,
25:18
right?
25:18
And now I have five, 500.
25:18
So that's basically perfect.
25:18
That's, that really works.
25:18
Pretty well. - We did do this experiment again, and the number,
25:20
we got very much agreed with quantum mechanics,
25:20
but this is one of the most misunderstood experiments in all of physics. -
25:20
You'll find in all sorts of physics textbooks
25:20
and papers and whatnot,
25:20
that what Bell's theorem proves
25:20
that it rules out local hidden variables
25:20
or local realism.
25:20
John Bell said that was an error, you know, he, he said like,
25:20
it's really quite remarkable how many people make
25:20
that error. - I always get confused at the conclusion of Bell's theorem. -
25:20
Yeah. - Because there's a lot of people who say like,
25:20
okay, it rules out hidden variables,
25:20
or things have to be none local or whatever.
25:20
But what, what do you think? - Yeah, I think it is super confusing,
25:20
and when I first learned Bell's theorem,
25:20
I was told that it rules out local hidden variables. - I've heard this
25:20
other argument that it's sort of disproves either locality
25:20
or realism. - If you say,
25:20
okay, it means that you give up local realism,
25:20
and so that means you somehow have a choice between giving up locality
25:20
and giving up realism.
25:20
If you're giving up realism.
25:20
Realism about what?
25:20
Like, like you gotta, you gotta tell me,
25:20
because like for most definitions of that word, you'd also be giving up locality.
25:20
So what the hell are you saving?
25:21
Like, I just don't, yeah, it's,
25:21
it's a really deep misunderstanding
25:21
that shows up in almost every single textbook on the subject. -
25:21
So what does Bell's theorem really prove?
25:21
Well, here's the logic.
25:21
Start by assuming locality for the entangled particles.
25:21
Using the EPR argument,
25:21
the only way for them to coordinate their outcomes is using local hidden variables.
25:23
Then Bell's proof showed that local hidden variables predict an incorrect experimental result.
25:24
Therefore, the assumption of locality must have been wrong. - We are obliged to
25:25
invoke something like actions going faster than light from one place to another. -
25:25
The EPR paper by itself had shown
25:25
that the Copenhagen Interpretation is non-local,
25:25
which is why Einstein thought there must be an alternative way to describe the
25:25
experiment that is local.
25:25
But Bell's theorem says that's not true.
25:25
Any theory that correctly describes this experiment must be non-local. - But I,
25:25
I still, I would hesitate to say that that means that Einstein was wrong,
25:25
right?
25:25
Because what I would,
25:25
I would say is this shows
25:25
that Einstein was right to be concerned about all of this. - People often
25:25
claim that Einstein's problem was
25:25
that he simply couldn't accept quantum mechanics,
25:26
but it was only because he refused to shut up and calculate that.
25:26
He discovered two of the most important aspects of quantum mechanics, entanglement,
25:26
and non-locality. - The heart of the debate between Einstein
25:26
and Bohr was about whether there was a problem,
25:26
whether there was something to be concerned about.
25:26
And the major concern
25:26
that Einstein brought to the table from the beginning was about locality.
25:26
But you know what Bell showed was, oh yeah,
25:26
all that stuff that Einstein was concerned about, about locality,
25:26
he was completely right to be worried about it.
25:26
We have a problem. - If these particles really are acting non-locally,
25:29
this should cause paradoxes, shouldn't it?
25:29
Well, it does, but the paradox seems to be surprisingly tame.
25:29
Imagine you and your friend are measuring a pair of entangled particles.
25:30
Suppose an observer sees you measure yours first, and then your friend measures hers.
25:30
That observer thinks that you collapse the overall state of both particles
25:30
and your friend just finds out the result
25:30
when she measures.
25:31
But another observer will see the situation in reverse.
25:31
They see her measure first and then you, to them,
25:31
it was her measurement that caused the collapse, not yours.
25:32
But who's right?
25:32
Which measurement was the cause of the collapse and which was the effect?
25:32
It seems to depend on your frame of reference.
25:33
This paradox is worrying,
25:34
but it isn't as bad as the usual faster than light paradoxes.
25:34
In relativity, you can communicate faster than light,
25:34
then you can exploit how different observers disagree about timing.
25:34
If your friend who's on a rocket sends you an instant message
25:34
and you send an instant message back in some frames of reference,
25:34
your message can arrive before she even sent the first one.
25:34
If your message says, don't send your original message, and so she doesn't,
25:34
then you've got yourself a paradox.
25:34
What prompted you to send this message
25:35
if she never sent you anything in the first place?
25:35
Quantum mechanics sidesteps these paradoxes through a fundamental constraint.
25:35
The outcomes are random, so you can't send messages faster than light.
25:35
When you measure your particle,
25:35
you get a plus or a minus completely at random.
25:35
Your friend measuring their particle also gets a random result.
25:35
Now the results will be correlated, but there's still completely random.
25:35
So there's no way to send any faster than light message in this way.
25:35
That's what prevents us from sending messages back in time using quantum mechanics.
25:35
So quantum mechanics is non-local,
25:35
but it doesn't lead to the sort of catastrophic paradoxes you might expect from
25:35
relativity,
25:35
but it's an uneasy truce.
25:35
Quantum mechanics may not break the letter of relativity laws,
25:35
but it certainly violates the spirit.
25:35
And non-locality isn't the only troubling thing about quantum mechanics.
25:35
The Copenhagen interpretation still doesn't explain what an electron is really doing
25:35
and why it acts
25:35
so differently when measured,
25:35
despite this many physicists took Bell's theorem to mean
25:35
that the Copenhagen interpretation was right.
25:35
All along Bell himself rejected this.
25:35
He spent the rest of his life championing alternative interpretations of quantum mechanics,
25:35
including the hidden variable interpretation called pilot wave theory or Bohmian mechanics.
25:35
Bell's theorem doesn't rule this interpretation out
25:35
because the pilot wave theory is non-local,
25:35
just like the Copenhagen interpretation.
25:35
It was Bell's theorem and bell's,
25:35
subsequent tireless work that made studying the meaning of quantum mechanics respectable again,
25:35
he showed that mere armchair philosophy
25:35
and thought experiments can have real consequences in physics. - We need to be
25:35
teaching quantum physics in a different way.
25:35
We need to be teaching Bell's theorem in a different way.
25:35
We do often teach Bell's theorem to physics students,
25:35
and it's taught as something that rules out local hidden variables.
25:35
That's just not true.
25:35
Bell's theorem, you know,
25:35
says that quantum physics is in very serious tension with relativity on the issue
25:35
of locality,
25:35
- John Bell passed away suddenly at the age of 62.
25:35
He didn't know it,
25:35
but he had been nominated for the Nobel Prize just a year earlier -
25:38
In a talk he gave in Geneva in January,
25:38
1990.
25:38
He said, I think you're stuck with the non-locality.
25:38
I don't know any conception of locality, which works with quantum mechanics.
25:38
That was eight months before he died.
25:38
So pretty much his last word on the subject. - And so that's it.
25:38
There really are faster than light influences in the universe.
25:38
Bell's theorem proves it, but maybe there is a way out.
25:38
There is another way to interpret quantum mechanics that's even more bizarre than the
25:39
Copenhagen interpretation.
25:39
Imagine the EPR thought experiment again,
25:39
we can think of the entangled state
25:41
as being in a superposition of the electron being up
25:42
and the positron down,
25:42
and the electron being down, and the positron being up.
25:42
In the Copenhagen interpretation,
25:42
when you measure a particle and you get only one result, say plus,
25:42
the other part of the superposition collapses.
25:42
But in our examples,
25:42
we've seen that measurement collapse seems to be the source of non-locality.
25:42
So why don't we just get rid of collapse altogether?
25:42
This is what the many world's interpretation of quantum mechanics proposes.
25:44
When you measure a particle, instead of you collapsing the particle to one outcome,
25:44
both outcomes happen.
25:44
And there's two parallel versions of you who sees each outcome.
25:44
You have become entangled with your particle
25:44
because your state depends on what the particle is doing.
25:44
It sounds strange, but there's one huge benefit of this interpretation.
25:45
When your friend is about to measure her electron,
25:45
your positron doesn't need to rush to tell the electron what the answer will
25:45
be.
25:45
There are already two versions of the electron,
25:45
and they contain the right answer for each version of her.
25:45
There was no need for fast
25:45
and the like communication to explain the EPR experiment.
25:45
But how is that possible?
25:45
Doesn't bell's theorem prove that the two particles must communicate faster than light?
25:45
Well, in Bell's proof, we assumed that all measurements have just one outcome,
25:45
but that assumption just isn't true in many worlds.
25:45
This means that technically that proof doesn't even apply in the many worlds case.
25:45
So is many worlds local?
25:45
In one sense, no, because just like in Copenhagen, quantum mechanics,
25:45
entangled pairs can be separated by a huge distance and still share their state.
25:45
However, it is local,
25:45
unlike Copenhagen in the sense
25:45
that these far away entangled particles do not influence each other faster than light.
25:45
Many worlds obeys Einstein's universal speed limit.
25:45
But is it really worth accepting
25:45
that there are many versions of you in parallel universes just to recover locality?
25:45
Well, locality isn't the only reason many worlds has become more and more popular.
25:45
I also really like many worlds, I, because Copenhagen never sits, right?
25:45
And when you start telling the story, right, of like what happens at measurement,
25:45
it's like, well, what is a measurement
25:45
when you have like this quantum system
25:45
and there's some other system
25:45
which is like much larger.
25:45
And so, you know, but it, it always feels a little bit arbitrary.
25:45
Whereas this, this argument that every time two quantum particles are interacting,
25:45
their wave functions are essentially, you know, combining and becoming entangled,
25:45
that to me feels more consistent. - Yes.
25:45
But I, I think that's right.
25:45
What do you think are like the problems with many worlds? - The biggest
25:45
problem is I think people's struggle to deal with sort of the infinity
25:45
that that brings forth. - For sure. -
25:45
But I,
25:45
I don't know that that's necessarily an argument against it.
25:45
Just 'cause like, just 'cause it's hard to imagine doesn't mean, yeah,
25:45
it's not what's happening.
25:45
If many worlds is right,
25:45
everything changes the conflict between quantum mechanics and relativity vanishes.
25:45
Physicists have been struggling for decades to unite quantum mechanics with general relativity to
25:45
build a theory of quantum gravity.
25:45
And maybe we've been failing
25:45
because we've been trying to marry relativity to a non-local theory.
25:45
But if quantum mechanics ultimately turns out to be local,
25:45
well then Einstein's dream of a local description of reality might not be dead,
25:45
after all.
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