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Veritasium
What Happens If You Keep Slowing Down?
What Happens If You Keep Slowing Down?
Veritasium
·
30:09 · 19 thg 1, 2026
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0:00
This is a video of light traveling through a bottle at 250 billion frames
0:05
per second.
0:05
And here's that same video.
0:07
But now with the camera moving.
0:13
You can see it sweeps across the scene faster than the laser pulse itself,
0:17
which means this camera must be traveling faster than light.
0:21
So how is this possible?
0:24
Well, in this video,
0:25
I wanna show you three unusual ways of stopping time
0:28
and what you can see
0:30
if you just keep slowing down.
0:32
From a century old technique that still beats modern slow-mo cameras,
0:35
as all the way to a massive quadrillion frames per second camera
0:39
that captures electrons whizzing around molecules.
0:48
By the 1920s, electric motors were the new standard for powering factories and mills,
0:54
but many of these motors also came with a flaw.
0:57
They were sensitive to fluctuations in the electrical grid.
1:01
A power surge, like from a lightning strike made them behave unpredictably.
1:05
So one MIT engineer named Harold "Doc' Edgerton, set out to find a solution.
1:13
He had a setup that could induce these power surges in a lab,
1:17
but no matter what he tried,
1:18
Edgerton just couldn't see what was going on with the motors
1:22
because the machines would spin too fast for the human eye to see.
1:26
And cameras at the time offered no help.
1:29
Their exposure times were too slow,
1:31
so any photograph of a running motor would come out blurry.
1:36
But one day, Edgerton noticed that every time he triggered a power surge,
1:41
his equipment gave off a bright flash of light.
1:43
And when that flash hit the motor,
1:45
the moving parts appeared to stand perfectly still as if frozen in time,
1:51
which gave him an idea.
1:53
He could turn off all the lights in the room, set up a camera,
1:56
and leave the shutter open.
1:58
And since there was no light, no image would form on the film.
2:02
But then if he could illuminate the motor with a very brief
2:06
and very bright flash,
2:07
like the ones his equipment gave off,
2:09
well then he would get a sharp photograph.
2:13
All Edgerton needed was a way to reliably create these flashes.
2:18
So he started by using a high voltage power source to load electrons onto
2:22
a capacitor where they piled up onto one of the plates.
2:25
But because there was an insulator slotted between the two sides,
2:28
the electrons couldn't just jump to the positive side to balance out the charges.
2:32
The only way for them to get there would be to travel through the
2:35
rest of the circuit.
2:36
And the circuit was intentionally designed
2:38
so that electrons would have to cross a glass tube filled with a non
2:42
conducting gas like argon
2:44
or xenon.
2:45
On their own they would not have the energy to get through that gas.
2:49
So Edgerton added a trigger
2:51
that sent a high voltage pulse through a wire wrapped around the tube
2:56
and the electric field from
2:57
that pulse would rip electrons off the gas atoms inside the chamber,
3:00
ionizing the gas and turning it into a conductor.
3:04
In that instant, the charge stored in the capacitor would surge through heating the
3:08
gas to around 10,000 Kelvin,
3:10
nearly twice as hot as the surface of the Sun.
3:13
This would produce a very bright,
3:15
very brief flash of light lasting just 10 microseconds.
3:19
Then the electrons would recombine with the gas atoms stopping the current
3:22
and the circuit would go dark again.
3:25
This was Edgerton's strobe.
3:29
By the early 1930s, he was eager to test it outside the lab,
3:33
so he packed up a strobe and hit the road with his wife.
3:37
When he saw a random factory, he pulled over,
3:40
got inside the nearest phone booth
3:41
and called up the factory's president
3:43
and asked him something like:
3:45
"Do you happen to have any motors in there that don't work right?
3:48
I'd like to show you something."
3:50
More often than not,
3:51
he ended up inside setting up the strobe next to one of the motors.
3:55
The workers would watch as Edgerton froze the motor in time,
3:58
allowing them to take sharp pictures of the gears in motion.
4:02
Edgerton isn't the first to make a strobe.
4:04
Rather he took new bits of technology
4:06
that existed so he could make a better strobe.
4:09
A strobe that was brighter, shorter flash duration.
4:11
But he was not unique in that.
4:13
There were lots of electrical engineers in the world at
4:15
that time who could have done
4:17
that.
4:17
No, what Edgerton uniquely brought to the table was his eye for photography.
4:22
He took photos of synchronous motors,
4:24
and I think in part because he just thought synchronous motors were cool.
4:27
One day he showed his wife the 300th photo of a synchronous motor.
4:32
And she said, "Harold,
4:34
can't you take a picture of something a little more interesting?"
4:37
And so he did.
4:41
Tennis balls, pancaked against the racket, hummingbirds frozen in time.
4:46
He was one of the first to really start using strobes to communicate what's
4:51
happening at these timescales we can't see.
4:54
He would do this through like "Life Magazine," "National Geographic, magazines.
4:58
These magazines in the '30's, '40's,
5:00
were essentially the social media influencers of the day.
5:03
He just had this eye for composition.
5:06
Most of these pictures were taken in the 1930s and yeah,
5:10
it seems easy enough to swing a racket
5:12
and it's easy enough to press a button on the strobe,
5:15
but how do you time the strobe to go off exactly
5:17
as the racket hits the tennis ball?
5:20
That is the million dollar question, right?
5:22
You have a strobe
5:22
that turns on and off
5:23
and half a millionth of the second,
5:24
that's nice.
5:25
How do you get it to go off to the right half millionth of
5:28
the second?
5:28
'Cause there are a lot of them right?
5:31
And the answer is we use sound.
5:33
So we're gonna try and recreate one of Edgerton's photos,
5:36
popping a balloon and freezing it in time.
5:39
Is it okay if we walk through the setup?
5:41
I think that would make perfect sense.
5:42
Why don't you blow up a balloon.
5:44
Step one is you set up the experiment, or in this case, the performer.
5:48
And the next thing you wanna do is frame the image. -
5:50
So you're framing now before the balloon pops to get focus
5:53
and things?
5:54
Exactly, if you can't get a good photo with nothing happening,
5:58
adding the motion will not help.
5:59
And so the next step will be to get the strobe in the right
6:03
spot.
6:04
Now the strobe is set up with a trigger unit with a microphone.
6:08
And when a sharp sound hits the microphone,
6:11
the trigger unit sends a signal to set off the strobe.
6:15
We're gonna turn the lights out
6:16
and then we're gonna open the shutter of the camera,
6:19
but there won't be an image because the room will be dark.
6:22
And I'll say three, two, one, pop.
6:24
And when I say pop, pop the balloon with an upward motion.
6:27
And when the sound from the pop hits the mic, after a minor delay,
6:30
the strobe will fire.
6:31
The camera will capture
6:33
that image for the one 100,000th of a second it's lit.
6:37
Alright, we ready?
6:39
Lights out please.
6:40
And three, two, one, pop.
6:45
Lights.
6:45
Oh, there you go.
6:45
Oh, you look hmmmm.
6:47
Do not mess with this man.
6:49
Nope. - Oh, it's awesome.
6:50
You can see inside the balloon.
6:51
That's really cool.
6:53
This is another image we took.
6:55
Can you guess what this is?
6:56
This hovering white orb.
6:59
Here's another photo just a moment later.
7:01
It's like a little sombrero!
7:03
It is, yes.
7:04
That orb is a drop of milk falling onto a plate.
7:08
That's a pancake.
7:09
But you'll notice the little drops are all spreading out.
7:12
Yeah, it's so, so crisp.
7:14
Come around and have a look here.
7:15
Right, it's translucent here.
7:16
You're seeing through it.
7:18
Oh, wow.
7:19
Now, once Edgerton showed the world how powerful strobe photography was,
7:24
he attracted some unexpected attention.
7:26
In 1939, a US major named George Goddard walked into Edgerton's lab unannounced.
7:33
He was working in the Army's photographic lab,
7:35
developing ways to photograph enemy movements from a plane during the nighttime.
7:40
The old way of doing a night reconnaissance photograph was to fly over the
7:45
site at high altitude
7:47
and drop a flare on a parachute.
7:49
And then the reconnaissance plane had to fly in under the flare where it
7:54
would be silhouetted,
7:55
where you could shoot at it.
7:57
Big problem...
7:57
Right?
7:58
So totally exposed.
8:00
Goddard wanted a safer way.
8:02
So he asked Edgerton whether he could develop a strobe powerful enough to illuminate
8:06
the ground from a plane
8:08
that was a mile
8:08
or so up in the sky.
8:10
A strobe that would be bright enough to take a reconnaissance photo.
8:13
Edgerton pulled out some paper, did a few calculations and said:
8:17
"We can do that."
8:18
The flash released about 60,000 joules in a single millisecond.
8:23
A peak power of roughly 60 megawatts,
8:25
which is comparable to the output of a large solar farm.
8:28
One, two, three, push.
8:32
The flash lamp was quickly utilized in World War II
8:35
and it allowed the allies to take pictures of Normandy the night before D-Day.
8:39
This way they could confirm that German troops were unprepared for the attack.
8:44
It's hard to ignore just how sharp these strobe photos are,
8:47
especially the ones Edgerton took in the 1930s.
8:50
So we got a research grade slow-mo camera from 2020
8:54
that shoots at 20,000 FPS,
8:56
and we're gonna compare its quality to Edgerton's technique by shooting a bullet through
9:01
a playing card.
9:02
So let's do the slow-mo camera first.
9:04
Three, two, one.
9:07
Let's see the video.
9:11
Oh, it's great to see how long the top part, which is now levitating,
9:15
it stays up.
9:15
Is now, yeah.
9:21
Okay, and now let's do the same with Edgerton's method.
9:24
Light's going out.
9:28
Shutter.
9:28
Shutter open.
9:28
Three, two, one.
9:31
Okay, I think I saw it!
9:35
That's cool.
9:39
The focus is amazing.
9:40
The edge of the card is beautiful.
9:44
You see this ghost effect?
9:45
There's like card.
9:47
Ah, you do see the ghost effect
9:48
and that's because you open the shutter
9:51
and it was a second
9:52
or two before I actually fired the gun.
9:53
There's enough stray light in the room to give you a faint exposure there.
9:57
Also, we still used a microphone to time the bullet,
10:00
even though it's faster than sound.
10:02
So here's the gun, it fires, the sound of the gun comes out,
10:07
but the bullet is coming out ahead of the sound,
10:10
but the bullet is supersonic
10:12
and a supersonic object moving through the air creates a sound,
10:16
a sonic boom.
10:17
Now you can pick up that sonic boom with a microphone,
10:20
and by moving the microphone physically along the trajectory,
10:24
you get the time where the bullet is gonna be
10:26
when the strobe goes off.
10:28
I think it's a brilliant way to solve the problem
10:30
and I get to say
10:31
that because I did not invent it.
10:34
Edgerton was very inventive and had projects all over the place.
10:37
He was teaching at MIT,
10:39
but then he had companies for things like underwater cameras
10:42
and he was making movies,
10:43
and oh, he even won an Oscar.
10:45
So if there's anything he wanted to do, he sort of just did it.
10:49
And I feel like I'm quite the opposite.
10:51
You know, when I joined Veritasium back in 2023,
10:53
I started off as a researcher.
10:55
I was fact checking videos and setting up shoots,
10:57
but then Derek and the other writers suggested I should make a video of
11:00
my own.
11:01
And I remember thinking, yeah, I don't know, maybe one day.
11:05
But they kept pushing for me to do it.
11:06
And I'm so glad
11:07
that they did because
11:09
when Derek and I made my first video,
11:10
I fell in love with it.
11:11
So if there's anything you're putting off, you should just go do it.
11:15
And if that something is a project you want to set up
11:17
as an entrepreneur or a creator,
11:19
well, today's sponsor Hostinger, makes that first step really simple.
11:23
Say you need a website or a store or any kind of online presence,
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Head to hostinger.com/Veritasium10 and use our code Veritasium to get 10% off your subscription.
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You can also scan QR code here.
11:54
So I want to thank Hostinger for sponsoring this part of the video.
11:57
And now let's go look at pictures of that card we shot.
12:00
So here are the two techniques side-by-side,
12:02
and here's Edgerton's original as well.
12:06
So why does a research grade camera from 2020 struggle to get the same
12:09
resolution as a camera from decades ago?
12:12
That's because we are really working with two resolutions here.
12:15
A spatial resolution or how many pixels your image has,
12:18
and a temporal resolution which dictates whether you only capture one frame,
12:22
like a strobe photo or a progression of frames like our high speed video.
12:27
The problem is that more often than not,
12:29
the hardware is limited
12:30
so that you really have to trade one resolution for the other.
12:33
High pixel count or high frame rate.
12:36
The fundamental limit you hit is how fast you can get pixels off the
12:39
sensor.
12:39
And that's why there's a maximum speed to read every pixel
12:43
and then to go any faster,
12:44
you have to not read out all the pixels.
12:47
So this camera will give you a million frames a second,
12:49
but you're like 16 by 128 pixels.
12:52
And that's not much of a image.
12:54
Okay, so there's always this trade off.
12:56
Either you go for very high pixel counts and bring the frame rate down.
13:00
At the Edgerton Center we pushed this
13:01
as far as it goes with one frame
13:03
and that's it.
13:04
But you can also push it the other way,
13:06
one pixel and very high FPS. 1 trillion FPS in fact.
13:12
But wait, it's just one pixel.
13:14
What can you do with one pixel?
13:16
Great question.
13:17
In the cameras that I can show you today are cameras that you're right,
13:20
they can really only see one pixel at a time,
13:22
but they can see close to a trillion frames per second.
13:26
And what that lets you do is ultra slow motion videos showing light actually
13:30
traveling.
13:31
Here's that video of light traveling through a bottle.
13:34
You can see the wavefronts
13:36
that form below the bottle
13:38
and even how the light bounces off the cap.
13:41
And even though this looks like a normal video,
13:43
you can take it with a camera that only sees one pixel.
13:47
Here's how you do it.
13:48
A single pixel camera is one that captures just one thing,
13:51
how many photons land on the sensor.
13:54
And the sensor here is typically sensitive enough to register whether even a single
13:58
photon hits it.
13:59
And it can count those incoming photons around a trillion times a second.
14:04
So each bin, and technically each frame is roughly one picosecond long.
14:09
In that time, even light itself travels only 0.3 millimeters.
14:14
Sounds impressive, but we've actually had this tech in many phones for years now.
14:18
It's just LIDAR.
14:19
You shoot out a pulse of light,
14:21
it bounces off and you time how long it takes for
14:23
that pulse to come back.
14:24
And from that you get the distance to the object
14:26
that it bounced off of.
14:28
But this is all you need to take a speed of light video.
14:31
We have a setup here that is basically a scaled down room.
14:34
And we just have some different shapes in it.
14:36
We have a cone of sphere, we have a mirror in the back.
14:39
And finally we have the Veritasium and the Camera Culture logos.
14:44
We wanna see light propagating through a scene.
14:47
So the way we do
14:48
that is we shoot out a really short laser pulse
14:51
that hits just one point in the scene
14:53
and that laser pulse has a ton of photons in it.
14:55
Those photons will hit an object scatter everywhere,
14:58
and we want to see what
14:59
that scattering looks like at all these portions of the scene.
15:02
To start, our single pixel camera will point at the top left corner.
15:06
So when a pack of photons from the laser pulse hit this random spot
15:09
on the wall,
15:10
reflect to the corner and finally bounce into the camera,
15:14
the sensor is gonna pick up their signal at a trillion frames per second,
15:18
but that signal will be pretty faint.
15:22
So the problem here is
15:23
that we're exposing for such a short time
15:25
that you actually just don't get
15:26
that much photon return.
15:27
What we do is we actually take a bunch of measurements
15:29
and then group them all together
15:30
and that gives us actual usable information about,
15:33
you know, how far away the light traveled in a scene.
15:36
Then you move the camera slightly and repeat the experiment.
15:39
So you shoot out a laser pulse,
15:41
you let it scatter off the same spot
15:42
and record the signal from this new position.
15:45
You can do that a couple hundred times
15:47
and move the camera again until you get a grid of points across the
15:52
whole scene.
15:52
You're literally going just one pixel at a time.
15:54
One pixel at a time.
15:55
That's the caveat.
15:56
Yeah, exactly.
15:57
We actually have two mirrors here that let us steer the beam, you know,
16:01
left and right and up and down.
16:03
So by turning where the mirror is, we can turn where the sensor looks.
16:06
The most important thing for this technique to work is
16:09
that the scene has to play out pretty much exactly the same every time
16:12
you move the sensor,
16:13
because if it didn't, then every pixel will tell a different story.
16:17
It's like if I try to record this section four separate times
16:19
and use a quarter of each to fill in the screen screen,
16:22
I would get a garbled mess.
16:24
Thankfully the laser pulse in our scene scatters pretty predictably.
16:28
That's what lets us get unlimited resolution.
16:31
So we can basically say,
16:32
let's scan as many points in the scene as we need.
16:34
That gives us good spatial resolution.
16:37
The more points you scan along this grid, the higher your final resolution.
16:40
If you want 4K, you simply scan a 4K grid of pixels.
16:44
It's just gonna take more time.
16:45
The nice thing is light is fast,
16:47
so we can do this as fast as the mirrors can move.
16:50
Within just a couple of minutes.
16:51
The sensor captures millions of laser pulses across the whole grid.
16:56
So this is now everything compiled together for a time of flight?
16:59
Exactly, this is everything put together.
17:01
So what we're looking at now is going to be again for a fixed
17:04
laser spot.
17:05
So I'm gonna click play.
17:11
Oh, Camera Culture logo!
17:13
Yeah All of this was less than eight nanoseconds of time.
17:17
And here's another scene under the same setup.
17:26
Now you can also take this a step further by rotating the scene
17:29
and recording multiple points of view.
17:31
We have this algorithm
17:33
that kind of takes this Coke bottle video capture from different views
17:37
and is able to create these fly-throughs,
17:40
being able to see the light propagate from any direction
17:42
and like flying through the scene
17:44
as it's happening.
17:45
Oh, that's so cool.
17:47
So some things that are interesting to note is –
17:49
because we're moving towards the right
17:50
and the light is propagating towards the right,
17:52
but we're moving kind of faster in this visualization – this wavefront appears stationary,
17:57
as you can see.
17:58
Oh yeah.
17:59
That is kind of breaking physics.
18:01
I mean, you are moving the camera faster than light.
18:03
Yeah, exactly, yeah it's kind of mind boggling almost.
18:11
So this is a fish tank
18:12
that we put a mirror into
18:14
and this diffuse reflector.
18:16
So you'll see a pulse of light will enter the fish tank,
18:19
it will reflect off the mirror and hit the diffuse reflector.
18:23
That's crazy.
18:24
This is a diffraction grating.
18:27
So it's kind of defracts the light into different modes.
18:31
So again, you see the light enter the tank
18:31
and it separates into these different modes.
18:32
Those are the different modes?
18:32
That's insane.
18:34
My first impression was, oh, these are just simulations from I don't know,
18:37
Unreal Engine 5.
18:38
But this is, like, real data.
18:40
It's like the bullet time video in "Matrix."
18:42
You've probably seen that.
18:43
No way!
18:43
Is your motivation "The Matrix?"
18:46
By the way, these videos were created at the University of Toronto and MIT,
18:51
but Brian from AlphaPhoenix actually built one of these speed of light cameras in
18:56
his garage,
18:57
which is mad.
18:58
You should go check that out.
18:59
So those are the two extremes.
19:01
Strobe photography on one side and a trillion FPS on the other.
19:05
But if you combine both, you actually get to see what electrons are doing.
19:12
Even though what that means exactly is debated.
19:16
You say electrons act like waves?
19:17
No, they don't exactly.
19:19
They act like particles.
19:20
No, they don't exactly.
19:22
We can write mathematical expressions and calculate what the thing is going to do.
19:27
Without actually being able to picture it.
19:29
Do electrons exist?
19:32
How truthful do you want me to be?
19:35
Now we still don't have a video or photo of electrons,
19:37
but this might be the next best thing.
19:40
And to pull it off, we had to build big, really big.
19:47
Okay, we're driving down what up until 2017 was the world's straightest object.
19:52
So we've been driving for like what, five, five-ish minutes?
19:55
Yeah, and we are wanna say about halfway there.
19:56
Oh, I thought we were… Oh no, there's a lot more there.
19:57
Let's do it.
19:57
Let's go see it.
19:57
This is SLAC, a US national lab that houses a 3.2-kilometer-long,
19:57
perfectly straight electron accelerator.
19:57
Whoa.
19:57
That is so long down there!
19:57
And that it just continues like this all the way down it.
19:57
The noise you hear is exactly 120 hertz.
19:57
That's the frequency at which electron pulses are generated underneath this building,
19:57
120 pulses a second.
19:57
And this is the sound of the equipment
19:57
that accelerates them to over 99.9999992% the speed of light.
19:57
And this lets you see electron clouds move around molecules, essentially?
19:57
Right?
19:57
So why would you care?
19:57
Because essentially electrons create the fields in which everything else happens.
19:57
Molecular bonds break and form
19:57
because the electrons essentially give them a push to do
19:57
so.
19:57
Right, so the electrons are responsible for everything
19:57
that you see in nature
19:57
and being able to look into their motion is the most fundamental way of
19:57
studying materials and matter.
19:57
Now, to achieve this, you need a nanoscopic equivalent of a strobe.
19:57
So you first feed these relativistic electron pulses through a set of devices called
19:57
undulators.
19:57
They're stacks of magnets spaced only a few millimeters apart, with alternating poles.
19:57
So the first pair has the north pole facing the electron pulse from above
19:57
and the south from below.
19:57
Then the second pair flips and so on.
19:57
Now because the electrons are traveling through a magnetic field,
19:57
a force called the Lorentz force will push them in a direction perpendicular to
19:57
both their velocity and the magnetic field lines,
19:57
in accordance with the left hand rule.
19:57
So at one magnet pair, the electrons will curve clockwise,
19:57
and at the next pair counterclockwise and so on.
19:57
This causes the electrons to wiggle.
19:57
Now since the electrons carry a charge,
19:57
this wiggling motion causes them to emit electromagnetic radiation.
19:57
And even though they oscillate at these millimeter wavelengths because of the magnet spacing,
19:57
the wavelength of the resulting EM radiation is much smaller.
19:57
This is the fun thing about the theory of relativity.
19:58
If you would travel at near the speed of light, the length scales contract.
19:58
While that periodic structure is macroscopic for us, right?
19:58
We see each magnet, these are centimeter scales.
19:58
For the electron because it's traveling so fast, all of that space contracts.
19:58
And so it's actually oscillating really, really fast.
19:58
And these oscillation periods are compressed.
19:58
And it means that if you compare that to wavelengths,
19:58
that is in the x-ray domain.
19:58
Now that actually only gets your wavelength part of the way to the true
19:58
x-ray regime.
19:58
But if as an observer you stand at the far end of the accelerator,
19:58
all those electrons will be coming at you at more than 99% the speed
19:58
of light.
19:58
So in your reference frame, any light those electrons emit will additionally be blueshifted,
19:58
producing x-rays as small as 50 picometers in wavelengths.
19:58
Initially, these x-rays are created randomly along the undulator,
19:58
producing an incoherent light pattern.
19:58
But soon after, the electric fields from the x-rays start to interact with the
19:58
electrons,
19:58
speeding some of them up and slowing others down.
19:58
This causes faster electrons to catch up with slower ones.
19:58
So they get bunched up into periodic structures,
19:58
parallel sheets that are spaced at distances exactly equal to the wavelength of the
19:58
X-rays.
19:58
This is called microbunching.
19:58
Now these sheets of electrons emit light as unified fronts.
19:58
So the resulting X-rays come out coherently as a laser pulse.
19:58
This dramatically increases their intensity And the pulses come out incredibly tightly packed,
19:58
being only a few femtoseconds long,
19:58
and they can get as short as a couple hundred attoseconds.
19:58
That's 10 to the power of negative 18.
19:58
An absurdly quick pulse.
19:58
To put it another way,
19:58
the attosecond is to the second what the second is to the age of
19:58
the universe.
19:58
On an attosecond scale, you can see electrons zip around essentially atoms and molecules.
19:58
That's insane.
19:58
Yeah.
19:58
After the undulators the x-ray pulses are sent to experimental stations at the end
19:58
of the tunnel.
19:58
So where's the main x-ray beam?
19:58
The main x-ray beam is coming through this tube over here.
19:58
Okay.
19:58
If you wanted to...
19:58
It's a little harder to see, but coming in through this tube over here.
19:58
So this is the main place where the x-rays come into the hutch.
19:58
And so the x-rays focus into what we call an interaction point.
19:58
Now you fill this interaction point with the molecules whose electrons you want to
19:58
study.
19:58
Now we shine that x-ray pulse on a molecule,
19:58
and when it hits the molecule,
19:58
it will ionize the molecule
19:58
and it ionizes predominantly from these inner shells from the very core parts.
19:58
The thing is, core level electrons from different elements have different ionization energies.
19:58
So if you want an x-ray to eject a core level electron from a
19:58
nitrogen,
19:58
it needs around 400 electron volts.
19:58
Whereas for an oxygen, it needs around 550.
19:58
So by tuning the x-ray energy to match these ionization energies,
19:58
you get to choose
19:58
which of these atoms within the molecule the x-ray is going to ionize.
19:58
And any excess energy left after an x-ray has ejected an electron will be
19:58
taken by that electron
19:58
as kinetic energy.
19:58
Now, once you ionize this molecule,
19:58
the kinetic energy will tell you something about what's going on around that electron.
19:58
Well, electrons are not independent particles, they talk to each other, right?
19:58
They have a negative charge.
19:58
So if you have a high electron density around a particular atom,
19:58
the core level electrons will be bound less tightly to the nucleus
19:58
because of the presence of all these other electrons around the atom.
19:58
So its ionization energy will actually be slightly lower.
19:58
Whereas if you have a lower electron density than average around an atom,
19:58
those core level electrons will be bound more tightly with a higher ionization energy.
19:58
Therefore, when you measure the kinetic energy of the electrons you eject,
19:58
you can use the difference between the input x-ray energy
19:58
and the output kinetic energy to infer what
19:58
that electron density was.
19:58
Now, once we can take a picture of an electron density,
19:58
we can change what the molecule is doing,
19:58
make it do some process in time,
19:58
and then we can look at how electron densities change.
19:58
We have above us.
19:58
We actually have an entire laser hall.
19:58
So we generate laser light,
19:58
we bring it down through tubes like here behind you
19:58
or over here on the ceiling.
19:58
Traditional laser light.
19:58
These are infrared lasers.
19:58
We bring them onto this table.
19:58
And you see all these boxes on this table?
19:58
These boxes are to condition laser to give it the properties that we want.
19:58
We can change the color of the laser, we can change the polarization state,
19:58
we can change the duration of the pulse.
19:58
So we sculpt these pulses,
19:58
then we have them go co-propagating with the x-rays into our target.
19:58
And so, now our first laser pulse will create some non-equilibrium state in the
19:58
molecule,
19:58
will drive some dynamics and then our x-ray pulse will probe it.
19:58
This attosecond x-ray pulse ejects an electron from the molecule after a time delay
19:58
t.
19:58
And by measuring the kinetic energy of the electron,
19:58
you can study how the electron density of the molecule reacted to the trigger
19:58
laser.
19:58
So you get an attosecond snapshot, like a strobe, of how the molecule changed.
19:58
Then you can get another sample of the same molecule,
19:58
shoot it with a laser again,
19:58
but this time increase the probe delay slightly to t plus delta t.
19:58
This will tell you how the electron density changes a little later.
19:58
And you can keep increasing this delay each time to get a sequence of
19:58
snapshots of how that electron density evolves over time.
19:58
Isn't there a big assumption here that every time you do it,
19:59
you're expecting a repeatable result from the molecules?
19:59
Yes, absolutely, so you need for your initiator to drive the same dynamics over
19:59
and over again.
19:59
If you have a new process happening every time, this technique will fail.
19:59
But if the scene is repeatable, then like the trillion FPS camera,
19:59
you can use this technique to create a molecular movie.
19:59
And here, the smallest amount by
19:59
which you can tweak the time delay for this x-ray strobe is around 300
19:59
attoseconds.
19:59
So you can get frames that are only a few hundred attoseconds seconds apart.
19:59
And if you stitch those together,
19:59
you get a movie that technically runs at over a quadrillion frames per second.
19:59
So this is a movie of the dynamics that we might like to image.
20:00
So this is a small molecular system.
20:00
This is called para-aminophenol.
20:00
This calculation was done by some of our collaborators in Madrid.
20:00
They had calculated what is the response of this molecule to the removal of
20:00
an electron.
20:00
So they simulate an x-ray pulse coming in and removing an electron.
20:00
So the red color here represents an increase in the density of the electron,
20:00
and the blue represents a decrease.
20:00
And so we see
20:00
that when we've shined this x-ray pulse onto this molecule
20:00
and we've removed an electron,
20:00
we initiate some charge distribution that starts to move across the molecule.
20:00
And so we wanna image this charge motion.
20:00
The video is a simulation,
20:00
but it's been validated by the experiments done at SLAC.
20:00
Our method for probing these seems to work.
20:00
We can compare to a handful of points and say, oh,
20:00
these look broadly similar.
20:00
Much after this few femtosecond, as we approach five to 10 femtoseconds,
20:00
we start to diverge.
20:00
Our prediction starts to diverge from our measurement.
20:00
And actually this is the most exciting time in science, right?
20:01
When you have a prediction, and then you have a measurement,
20:01
and they don't agree, that's when you get really excited,
20:01
because you just found something you didn't know ahead of time.
20:01
You couldn't have predicted that.
20:01
I think the most powerful thing for me here is we animate a lot
20:02
of electrons,
20:04
right?
20:04
And pretty much every Veritasium video has electrons moving in some way.
20:04
So the fact that we're actually seeing these electron densities move around… I don't
20:04
know,
20:04
I think it's spectacular.
20:04
Absolutely.
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