Into the Impossible With Brian Keating - The Universe Is Trying to Destroy All Matter
Episode Date: April 21, 2026An astrophysicist says the universe doesn't pull things down — it accelerates upward toward them. And that's one of the tamer claims in this conversation. Dr. Hakeem Oluseyi joins Brian to dismantl...e assumptions most physicists won't touch in public. Dr. Hakeem Oluseyi is a NASA researcher, Nova host, and author of Why Do We Exist, a unified framework spanning quantum fields to cosmology — and making a case for why imagination may be the universe's endgame. We cover: -why falling is the wrong way to think about gravity -what Hakeem discovered about heat flow while washing dishes that took decades to confirm -why humans sit at the exact logarithmic center of the universe, the calculation that puts 100,000 multicellular-life candidates in the Milky Way -why we'll likely never find any of them, and the one thing most people confuse for knowledge that Hakeem says is the most dangerous deception in society today. The universe makes life inevitable. It does not make multicellular life inevitable. Key Takeaways: 0:00 The Question That Breaks Physics 1:30 Meet Dr. Hakeem Oluseyi 3:10 The Earth Isn't Pulling You Down 6:00 Heat That Flows the Wrong Way 9:05 Why Electrons Run the Universe 11:15 The Most Dangerous Deception 14:20 We're at the Center of Everything 20:05 100,000 Worlds — And We'll Never Reach Them 22:30 Nine Realms: A Map of All Reality 25:25 When Two Realms Grind Each Other Apart 28:50 The Line Between Speculation and Science 33:20 The Hubble Tension War 40:40 How Long Until the Universe Destroys All Matter 44:05 Victor Glover and Why Representation Matters 48:10 What Happens to a Species That Stops Imagining 📬 Get the transcript, fascinating bonus content, and my Monday M.A.G.I.C. Message: https://briankeating.com/yt 🌠 Have a .edu email and live in the USA 🇺🇸? You automatically win a meteorite: https://BrianKeating.com/edu 🔔 Subscribe: https://www.youtube.com/DrBrianKeating?sub_confirmation=1 🎯 Support Into the Impossible on Patreon — get my weekly M.A.G.I.C. Message, unfiltered bonus content, and live monthly Office Hours with me: https://www.patreon.com/drbriankeating ⭐ Join this channel for perks, monthly Office Hours, and your name in the Member Roster at the end of every episode: https://www.youtube.com/channel/UCmXH_moPhfkqCk6S3b9RWuw/join 📚 My books: Losing the Nobel Prize (memoir): http://amzn.to/2sa5UpA Think Like a Nobel Prize Winner: https://a.co/d/03ezQFu Focus Like a Nobel Prize Winner: https://a.co/d/hi50U9U Galileo's Dialogue (first-ever audiobook): https://a.co/d/iZPi9Un 🌐 More: 🏄♂️ Twitter: https://twitter.com/DrBrianKeating ✍️ Blog: https://briankeating.com/blog 🎙️ Audio-only: https://briankeating.com/podcast #intotheimpossible #briankeating #science #physics #astronomy #cosmology #podcast #universe Learn more about your ad choices. Visit megaphone.fm/adchoices
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The universe is going to wipe out the ability for life to exist at all because it's going to get
rid of all the stars and planets and there's going to be black holes and not much else.
That's Dr. Hakeem O'Shea, Stanford PhD, NASA scientist, ABC News contributor, and he, he
He just told me exactly how much time we have left.
You say the universe will succeed in its ultimate mission.
Oh, that's really great.
And that mission, Hakeem, you say, is to destroy all matter.
So what I want to ask you is, how much longer do we have?
I mean, it's tax season.
Should I pay my taxes?
I am not a tax advice person.
So anything I say, don't sue me.
We got a long time, right?
But one thing I see from this, from this tale of the universe, is that it appears to
that the universe is very young.
And why do I say that?
Because only a young universe is observable, right?
That cosmic event horizon is out there.
And the expansion rate of the universe goes faster and faster.
So it's kind of like when you have children,
you're going to interact with them longer as them being adults
than you are going to interact with them as them being children, right?
So your mind frame as a parent needs to be able to make that transition.
Well, the universe is going to exist much longer as a lonely place
than it is as a place packed tight with galaxies
where galaxies are only like 10 times
our own size apart from each other, right?
Where stars are tens of millions of times
are own size apart from each other.
You know, soon we're just going to be the local group only.
So we're right at the beginnings of the universe.
I mean, how long is that going to last one?
Yeah, so I look at the universe
as a series of events
where the universe is attempting to go neutral
under these field forces, the strong force,
the electromagnetic force, and the Silephorus era is the universe going neutral under gravity, right?
So what is happening is, matter is collecting in these vast filamentary structures that we call the cosmic web,
and is it expanding in the areas between them.
And as it does so, as the matter collects, higher levels of complexity are evolving.
So gas becomes stars, the residue becomes planets.
Those stars ultimately die.
And every galaxy is destined to be, you know, a black hole, giant, supermassive black hole
surrounded by a halo of, you know, smaller black holes, right, that may eventually
coalesce inside.
The universe is going to wipe out the ability for life to exist at all because it's going to
get rid of all the stars and planets and, you know, and there's going to be black holes
and not much else, right, as far as matter concentrations go.
But the things that we have to deal here with on Earth are our immediate concerns, right?
eating today is a bigger concern than the universe ending.
And what I find fascinating about humans is that we're always talking about the end of the world, right?
And what does that mean?
That means all humans die at the same time.
And why are you so concerned with that?
When we know it's inevitable that each of us dies individually.
So finding value and fulfillment in your own life and meaning is where we should put our efforts.
And so for me, you know, I'm a family man and, you know, it was drilled into me as a child, be useful.
You know, my rural upbringing.
And, you know, I like to help other people.
And, you know, I have my own selfish things.
I used to love to play basketball until the cost-benefit analysis, you know,
as I age, became not very great.
But, you know, just finding fulfillment in life and hoping to contribute, man.
So you don't have to worry about these big things.
But there are more nearby cataclysms, like, you know, impacts that we can do something about
potentially, right?
Like large commentary or act.
asteroid impacts. You say, on a cosmic scale, the astronauts, the apples, etc., they're not really
being questioned by why it falls at all. Talk us through the argument that falling, the ground,
is accelerating up towards the apple, not the apple falling down. How is that not insane?
Right. It is insane because reality is insane, right? And I tell you, man, you know, I thought about it
this way. You know, I asked my students when I'm lecturing, if I hold out this object at arm's length
and release it and it just hovered in the air, how would you respond?
to that, right? You know, it would be shock. That's what magicians do. But in most places in the
universe, which is just outer space, if you do that, then it remains there, right? If you don't
give it an impulse of any sort. And so what really should freak you out is the fact that when I
release something, it moves all by itself. It does this thing called falling. Another physicist,
Will Kenny, you know, I heard him say this first, is that gravity turns motion through time
into motion through space, right?
And so what he's getting at there is this idea
that we're all moving through space time
at the speed of light.
And we're on these straight line paths
that we physicists call it geodesics.
But in the presence of a gravitating body,
that space time diagram gets warped in such a way
that, you know, if you think about it in X, Y plane,
if you're moving directly parallel to the Y axis,
you have no motion along the X axis.
But if I would have bend the X axis, but if I would have bend the
x-axis, even though you're moving in the same direction, you now have motion along that
x-axis. Well, in space-time, one axis is space and the other is time. So if you're in an
intergalactic space, you're moving through time at the speed of light, right? But when you get near a
gravitating body and that space time gets warped, some of your motion through space gets moved
through time. And so, when we think of falling, right, we think that objects are being pulled to
the earth, which is not the case. They're just continuing to move the way they move.
But then once you're on the surface of the earth, you now have an emergent property that we call weight, right?
And so that weight is due to the earth accelerating upwards against that space time.
So even though when we think of acceleration, we think of motion, but you don't need to move outward to accelerate upward.
The earth's surface doesn't have to move outward for it to accelerate upward.
Acceleration has to do with changing something.
With respect to your position, right?
Traveling.
So you just gave me a great idea to lose, you know, 50 pounds, just go to the moon.
That's all we have to do.
We're going to talk about that.
All you got to do.
Okay, next provide.
We're just going to go provocative, just like mind-blowing cleanse.
Okay, you made a claim in the book that almost no physicist I've ever known would be willing to make, would have the energy and even the, you know, confidence to make that heat does, in some cases, flow.
from cold to hot spontaneously.
And better than that, you say, you discovered it washing dishes?
So I was a kid, you know, with a single mom in the 1980s,
and she would like, wash these dishes.
When I get home, I want this floor waxed, right?
This is true.
And she was, you know, working at like 11 to 7 shifts.
I was waxing the floor at midnight.
But what thing I would do before I realized that it's not good for pots and pans at
some point in my 40s, you know, I would dunk a hot potting or skillet into a bath of
water and I would notice that the handle would get hotter. And, you know, I continued washing
dishes in this way by hand up until around the age of 30. And I kept asking myself once I became a
physicist because, you know, I worked in heat conduction and I know what the equation looks like.
The temperature gradient is there. It only moves from hot to cold. So I'm thinking, am I imagining
this or is this real? Well, one day I went to the University of California, Merced, and I was
talking to a professor who works with quantum dots. And he was showing that, you know, in certain
cases, when you have a strong current going in one direction, you can get this reverse current
against the voltage gradient, right? The voltage wants to move electrons from here to there,
but if you do it fast enough, you can get a reflection back. And in order to derive a classical
model, a classical analog to this quantum experiment, he used heat. And he showed exactly how
this works and I thought, oh my God, my intuitive experiment turns out to be real. And once you
understand why this is the case, it makes perfect sense. Because heat transmits as a wave within a
material. And when a wave encounters a boundary between, you know, light going from one index of
refraction to another, say, you know, there's always going to be, and it is required by the laws of
physics, a transmitting signal and a reflected signal. That's why you can see. You know, there's always going to be, and it is required,
That's why you can see out the window in the daytime, but you can't see out of it at night.
But the people outside can see in.
It has to do with, you know, which is stronger, the reflected or transmitted signal.
So when you have an incredibly strong heat flow over a boundary, some of that heat can be reflected backwards into your hand, right?
And so that means that just like life does the opposite with energy that inanimate matter does, right?
It concentrates, creates structure.
well, the same thing happens with heat flow.
And so that heat flow phenomenon, you know, lets us know why.
You know, sometimes creationists will argue that because of the second law of thermodynamics,
you can't form a star.
You can't form organization from disorganization.
But under certain circumstances, even though under most cases it's not true, under certain
circumstances, these paradoxes are allowed.
Speaking of like forming structure in the atomic realm, so we should say,
say there are nine realms. You go through it. The last one culminates with one of these things,
the brain, the realm of imagination. But you say that electrons are the heroes of the universe,
of the atomic realm, not the other way around. Why do we talk like that? I mean, because I was
always taught protons 1836 times heavier than electron, same charge magnitude. How could you possibly
think that these little wimps that they have more sway over the atomic realm? Why doesn't
anyone teach it like that? I was at the University of Southern Mississippi.
earlier this week, given a lecture, and I was hanging out with some chemists. And one of the chemists
said exactly that, right? He had read my book. So maybe the chemists think that way, but we physicists
certainly don't think that way. But if you imagine the universe without electrons, you know, you would have
all this positively electrically charged nuclei that would be trying to get as far away from each other
as possible. And you would never form larger structures than, say, a lithium nucleus. But along comes the
electron for me has what I find to be a massive coincidence right you have one of a proton a composite
particle that you know what is it well it depends on how much energy you probe it with right it can look
like a sphere at low energies it can look at like three quarks at higher energy or it can look like
three quarks with a gazillion virtual particles at even higher energies at the lhc and then on the other
hand you have this little what we call a point particle electron and their electric field
just happen to be exactly equal and opposite.
So that one, they combine into a hydrogen atom,
they are now electrically neutral,
and they can be packed together into giant molecular clouds
which just happen to birth stars, right?
So without electrons, man,
not only do we not have chemistry,
we don't even have stars and planets.
With the electrons in place, you know,
I think it kind of highlights to me
sort of like a dangerous deception that even educated people like me and others might have.
You don't get deceived as easily as I do. But I talked to a moon landing denier last week on
I'm Pierce Morgan. I'd love to have you on there. We could tag up on this guy. But this guy,
Bart Cibro. And he's making the claim. And I was astonished and a little bit depressed that
thousands of people in the comments agree with this guy that we never went there. I even had demos.
I had, you know, moon rocks. I have a plasma globe because he's claiming the astronauts would die.
And I was like, you think you're smarter than Elon Musk and all the analysis of a Astra?
He thinks he is.
So what do you think is a normal deception that educated people have right now?
What's the most dangerous deception in society?
I would say the deception of thinking that you know something when you don't really know it.
You believe it.
Right.
And the difference for me between believing and knowing, believing means that you accept something
is true without confirming it to be true.
And knowing means that you have confirmed it to be true.
But not only that, you associate an uncertainty with that knowledge, right?
So, for example, I believe that my mother is in Houston, Texas right now.
I haven't confirmed that to be true.
In all likelihood, she is, right?
There's a big, high probability with a small error bar.
But I know that that error bar exists.
And I know that that probability is not 100%.
And so I've said that to people, because for me in graduate school, that was a big revelation.
When I, let me tell you, it came to me by my PhD advisor who I talk about in my memoir.
He would tell me to do something, right?
And I might delegate it to someone else.
And he'll say, hey, Hakeem, there such and such happened?
And I'm like, oh, yeah, I told this guy.
And he's like, do you know that happened?
And I go, yeah, I told him.
And I saw him walk out of the room and had to do it.
He goes, but yeah, but do you know that happened?
And I'm like, oh, I'll be right back.
Right?
I hadn't confirmed it.
So a lot of people, you know, even though that sounds very obvious and intuitive, I find that for the vast majority of humans, we don't know the difference between what it means to know and not know.
And like you and I went to school for many years to become an expert on a topic.
And as they say, you know, becoming an expert means knowing more and more about less and less until you learn to you know everything about nothing.
But the point is, is that when you realize how much effort it took to become an expert.
expert on a topic and you realize that you haven't put in that effort in other places in life,
you're left thinking, man, I know nothing.
Becoming an expert makes you realize I am so ignorant, right?
But most people haven't gone through that process of becoming an expert.
And so most people, you know, and it's not a part of our education system.
I like to say, I know more about the Dunning Kruger effect than anyone who's ever lived.
I know what you're talking about.
Everything he just said, the falling, the heat, the electromagnet, the electromagnet,
That's actually the seed of an argument Hakeem makes in a book he just wrote.
And the argument gets more bizarre and dangerous from here.
You're one of the most simultaneously, infectiously, enthusiastic, optimistic people, I know,
but you also have this sober pessimism.
And I think nowhere is that better really defined than when you do a calculation about the life realm,
the realm of the living in this book where you calculate and you do this, walk us through
this Fermi calculation, which will lead to the Fermi paradox.
we'll get to that, that there's roughly 100,000 star systems in the Milky Way alone that could
host multicellular life.
And then we're like, oh, yeah.
And then you say, but we'll also probably never find each other.
Why not?
Absolutely.
Yeah.
Because, well, there are hundreds of billions of stars in our galaxy.
So if there are 100,000 stellar systems with planets that can host multicellular life,
that means it's one in a million.
So when a person who doesn't do astronomy looks up at the night sky, they may be a lot of
think they see a million stars. But, you know, on the planet total, you can only see 6,000, right? So
stars are huge, massive, burning brightly. But our galaxy is so big that you can only see the 6,000
nearest ones. So if there's one out of a million, they're going to be buried so deeply somewhere,
unless there's a massive coincidence. Even the sci-fi of Star Trek reflects this because, you know,
they never leave their own quadrant of the galaxy for the most part. They realize it's that
darn big. But let's get to the calculation. My calculation is similar to Frank Drake's equation.
But instead of looking for detectable civilizations, I think the better question is how many
worlds can have multicellular life. So you start with a number of stars and then you multiply that
by the fraction of stars that are just right stars. Make every get together chill. This Memorial Day
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They have the right chemical composition. They're in the right part of the galaxy, the galactic
habitable zone. They're long-lived enough for multicellular life to evolve, which on earth,
took around almost four billion years.
And they're not too long lived because that means they're small.
The planet has to be near them.
It will be tidily locked.
And those stars have these massive ejections and flares that would destroy life on that world.
So it needs to be in a sweet spot.
And so when scientists who aren't me calculated the number of stars that would be suitable,
it turned out to be 1.2% of the stars in our galaxy.
Then you need just right planets, right?
So those are planets.
If you want multisayular life, it needs to be in a habitable zone.
You don't need to be in a habitable zone for life.
You need to be in a habitable zone for multicellular life, right?
And so what do you need?
You need to be protected from the bad stuff, which is typically radiation,
but yet you need to have the geological conditions that allow you to form life.
You need liquids.
So if you satisfy the liquid criteria, you know, typically other.
things are in your favor, right?
Abunded liquids. So then you need to have
incredible luck. And what do I
mean by that? The Earth is
very unique when it comes to
planets. In the sense that we have
this three-layer filter that does
exactly what I just said. It blocks
the bad stuff. What is that filter?
For early life, it was four layers, right?
It was the ocean, the atmosphere.
No, they only had three as well.
The ocean, until late times. The ocean, the atmosphere,
the ozone layer, and our
magnetosphere. So when we look at planets around our solar system and among the thousands of exoplanets
we find, we see that atmosphere typically come in one of two configurations, super thick, like Venus,
Titan, Jupiter, Saturn, Neptune, Uranus, or completely absent or almost completely absent, right?
Moon, Mercury, Mars. And so here we have this almost absent atmosphere that if we did not have our
strong magnetosphere, it would have been eroded away by the sun's radiation, right?
Just like what happened with Mars.
But because we have this strong magnetosphere, accidentally, we have a special condition.
And so most people have been led to believe that that special condition is having abundant
surface liquids.
That's not what's so special.
There are 10 ocean worlds in our solar system.
But most of those oceans are under miles of atmosphere, rock, or ice.
Our water is based.
in sunlight. And so that early life eventually learned how to do, you know, that early life did
photosynthesis, but it eventually learned how to do photosynthesis that produced oxygen. And once that
oxygen was able to build up in the atmosphere and finally in a deep ocean, you get this burst of
life of multisaylor life, the Ediacaran followed by the Cambrian explosion. So that idea of being
bathed in light with liquids on the surface is what sets Earth apart.
And why do we have that condition with that strong magnetosphere?
Because of a big collision that happened early in Earth's evolution, right?
That's churned our Earth's interior.
And now a significant part of Earth's interior is molten metal, right?
When we see, not with Venus and Mars or Mercury.
We're unique in that way.
So, man, you know, it's almost like the universe makes life.
inevitable, but it doesn't make multisaylor life inevitable, right?
You need some luck.
And even if you get multi-saler life, yeah, it's going to have a sensory system.
It's going to respond.
But does that mean you necessarily get a technologically advanced civilization?
Highly unlikely, right?
Of all the billions of species, there's only one that has done that.
That's right.
Reach the pinnacle of evolution, which is what you call two guys in a microphone, a podcast.
So let's start with the scale question, because you, you
really define something that most people are completely oblivious about, and it borders into the
G question, the God question. I'll get to that in a minute. But you say that humans are slap dab,
I quote, in the logarithmic middle of the observable universe. See how I segue from the logger.
Okay, explain what that means and why does it matter? What does it mean to be in the logarithmic mean?
And what is the potential impact on humans and why does that matter to us?
The biggest known physical distance in the universe is the size of the observable universe.
And we express that as 10 to the power 26, right, meters across or in radius.
Same thing.
It's a factor of two.
But then when we think about the physically smallest entities in the universe, we think of the neutrino
that has a size limit of around 10 to the minus 26 meters.
And here we are at 10 to zero meters, slap dab in the middle.
And this is the place where, at this scale, like that.
can exist and intelligence can exist.
It doesn't exist on the scale of galaxies and stars.
There are no sentient stars that we know of.
But, you know, unless you read comics, right?
Marvel Comics has a sentient planet and all that jazz.
You know, the fact that in the logarithmic middle center of the universe is where we exist,
and that's where our intuition is valid.
That's the world that we know.
That's the world that Aristotle and these guys were thinking about and saying,
hey, I think I understand it.
Then we get our microscopes and telescopes and realize like, oh, there's a lot more going on.
And our experience cannot be extrapolated.
You got to understand it on its own merits.
And what's remarkable to me, you know, we're dudes and suits with microphones.
But man, I still think of us as an animal.
I still think of us as australopithecines, right?
You know, stone age creatures that have been able to come this far in knowledge and ability is,
incredible, but it's because we get in where we fit in.
This isn't something like textbook taxonomy.
You call it a swag, a scientific wild beep, yes.
Okay, so now why frame it that way?
And why did you organize the title and subtitle of the book?
You could take us through the book, title, subtitle,
judge the book by its cover, as we say.
Hey, book lovers, we're judging books by the covers.
We know we're not supposed to do it,
but it's into the impossible.
There's nothing to it.
Let's take a look and judge.
Why did you organize it in terms of these realms?
And what is the importance of the scientific in front of the wag?
So, you know, there is a difference between a wild-ass guess and a scientific hypothesis.
All right.
And, you know, what I'm saying is not at the level of a scientific hypothesis.
I'm not putting forth anything that's untrue, right, or inconsistent with what we're doing as scientists.
But I am informing a wild-ass guess here.
using my science.
So it's somewhere between hypothesis and guess.
And what I'm trying to do is create a cognitive map of reality
to help the reader understand,
if they're going to help us with understanding the true nature of reality,
then they need to have a map in their mind.
And, you know, I feel like, you know,
when I became a PhD student,
I felt like my job was to, you know,
you have to become current, right?
So what does that mean?
That means you have to read and understand
all of the knowledge in your field
up to what happened yesterday
and even understand what people are working on
that's going to come out tomorrow, right?
But then once you have that understanding,
now you need to make a new contribution to knowledge
and that's when you get your PhD.
So what I've done is I've taken the world
as we have framed it,
the universe and existence as we have framed it as physicist
and I said, hey, I understand how we see things.
But you know what?
Now let me make my new contribution.
Here's how I see things.
And I think that having this map of reality,
broken into these realms allows a person to understand the universe in its wholeness.
And again, I'm talking about the physical universe because with a title like, why do we exist,
it can't get religious and faith, you know, it interfaces.
And I'm not, you know, I have all respect for that, right?
That type of thinking.
But this is based on, you know, the scientific process.
And these nine realms to me are sort of like the minimalist set of realms that I can break
the universe into.
And some of them are obvious, right?
So the quantum realm, the cosmological realm, the dark realm, those ones are obvious.
But, you know, there are some that are more speculative, like the multiverse realm, right?
Another one that, you know, is not speculative, is known, but it's never put this way, is the realms beyond horizons, right?
That is a, you know, within black holes, beyond our cosmic event horizon.
These are the realms that we can never probe directly and exist in and report out.
You know, you can...
It doesn't stop our colleagues, you know, like Michi Okaku and our friends like Brian Green from speculating.
You know, I come from an experimentalist perspective in the cosmological realm, right?
And for me, I get a little frustrated, to be honest with you, with the rampant speculation.
Okay, string theory is one thing.
But when you start talking about things like Stephen Hawking did, where at the end of a brief history of time,
he says, once we get the, you know, theory of everything, then we'll know the, quote,
mind of God.
And he postulated that it was due to this...
you know, hardle hawking, instability that creates, that carves off time and creates it from
the no boundary, you know, from a timeless universe that existed before. But those things capture
the imagination. If I start describing superconducting tunnel junction detectors, calibration, polarimetry,
and you start talking about the sun and all the different realms that you and I are actually,
people don't seem to be as exciting. In fact, one of my agents, you know, kind of friends that are
eight bookings is like, well, it's great to talk about experiments, but they want to hear about
theories. I'm like, these theories will never be discovered.
They're totally, you know, the total vaporware.
And he said, they don't care.
The public doesn't care.
And that depressed me.
So where do you draw the boundary?
You have the imagination realm at the end.
That seems to be the one that sells the most, at least for our theoretical colleagues.
What do you make of that, that hunger for even if it's nonsense to talk about the multiverse,
the wormholes, these horizons we can't understand.
Why is the public care so much about that?
I think, you know, people do have curiosity, you know, and people do have in a sort of, you know,
I had friends that talked about the Illuminati and these sorts of things.
supposed to talk about the Illuminani, remember? That's right. That's right. I was at a guy's house
who was done very successful for himself talking about paranormal phenomenon. And he went on his
Amazon creator background and showed me his sales numbers from his many books. The dude was
making over, I'm not even going to say it, but it was a lot more money than I ever made from a book.
You know, he gave me my very first ride in, and my only ride in a, what is that car? Is it a Rose Royce?
maybe it was a Rose Royce.
I think it was a Rose Royce.
Yeah, it was a Rose Royce.
My only ride I've ever taken in a Rose Royce, right,
before he went to his mansion.
That's where I started.
And that's the thing about me
is that, you know,
I'm really thinking about the people
and reaching them.
And I realize that those kind of thoughts
can be a bridge into real science.
And I've tried to avoid that.
You know, in this book,
I've tried to be like,
where I'm speculating in everything, right?
Where I'm speculating,
I'm going to let you know,
this is speculation.
And what I didn't like about
when the string theory books were popular
is that they were written in such a way
that when they were speculating,
if you were a scientist,
you could recognize it as that.
But if you were a lay reader,
there was no way you could recognize it.
So you thought the universe really does have 11 dimensions
and thoughts like that, right?
So I'm with you, man.
It really, I don't like it.
I don't like people that lead people astray in that way.
I can't speak to their motivation,
but I can say that it tends to be profitable
and I'm not willing to go there.
You know, there's a lot of places
that people try to pull me into
that I'm just not willing to go.
Like people try to pull me,
into dissent religious folks, right?
Because it's, you know, and I'm like, no, I'm not doing that.
And people try to get me to say, hey, look at that light in the sky.
It's an alien.
And I'm like, bro, there is nothing that a light in the sky can do to make me conclude
that is an alien or it is anything other than a light doing something weird in the sky.
You know, that's what the date is telling me.
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two years ago, three years ago, got into the politics of science, the naming of the James Webb Space
telescope. You're one of the most courageous thinkers that I know. You're unafraid to go up against
powerful forces that tried to squelch you and really besmirch the name of James Webb himself.
And we're not going to recapitulate that. Because in this book, you talk about the findings that
this James Webb Space Telescope has made, including these early mature spiral galaxies that, you know,
according to some people shouldn't exist if the Big Bang occurred 14 billion years ago. They shouldn't
be appearing, you know, 100 million, 500 million, or even a billion years after. So you suggest a provocative
alternative, that gravity models need to be modified and that they may have a better capability
than dark matter alone. It doesn't mean that dark matter doesn't exist. Talk about that. What's your
justification? I mean, it is kind of a minority view, but I'm accustomed to that with you. You go out
on limbs. You're courageous. No pun intended, the minority view. You never hear these words like
hilarious dad joke and courageous academic, but today you break them all. Thank you. Thank you for
recognizing that, Brian. Courageous academic, that is a rare one. So it's not my thought, right? This is
the, this is me being the messenger because this is not the mainstream of thinking. But what the
people with these modified gravity models have shown is that, yeah, their models do reproduce
early, you know, mature galaxies much better than our standard approaches. It's one of these cases
where we treat it as either or, but it may be that, oh, in some circumstances, maybe something's
going on here and in other circumstances, this is what the dominant process is. So all I can do in this
case is say, hey, you know, this is a very model dependent field. We're not, you know, actually
creating galaxies. We're not actually creating universes in the lab and allowing them to evolve.
We're creating them in computers, right, using models. And those models are constrained by the
measurements of cosmological parameters, which are themselves kind of, you know, weird sometimes
when you have things like the Hubble tension, right? So we know that there are elements that
we don't know and we don't understand.
And what's clear to me, and I say this in the book, is that, like, you know, we really
think that the best fit to the data is dark matter, are dark matter and dark energy.
But it is not at the level of where we have conclusive knowledge of exactly the nature of these
phenomena.
And so it's kind of like, you know, when somebody in my family loses something, you know,
my wife and the kids, you know, I'll say, did you look in the refrigerator?
You know, they're like, it can't be in the refrigerator.
I'm like, listen, if you can't find it, it can literally be anywhere, right?
We can constrain it to the house in the car, maybe, but you don't know where it is.
So look everywhere.
And that's how I approach things.
You know, I approach things with until it has been conclusively demonstrated, we must remain
open-minded and we have to give credit what credit is due.
So if these models are able to reproduce what we see to some degree, you know, let's, you know,
Because that's the thing about these modified gravity models.
Every time you think they're dead, they get modified and do a little better to reproduce nature.
I've given the reader all the information, not just the preferred information.
Yeah, I actually have, you know, every now and then we have these horrific inquisition like teaching evaluations where some senior faculty comes in.
You know, I'm getting the gray hair and stuff.
So I'm pretty senior now, but they'll come in and remember.
And I was teaching about dark matter.
and I also mentioned Mond, modified Newtonian dynamics,
which you talk about in the book,
and I had interviewed, you know, Mordecai Milgram,
who was the conceptual, you know, architect of it originally,
and the senior professor was saying, well, like,
why do you teach that?
We know what's wrong.
I'm like, do you know what's wrong?
I mean, first of all, you're a theoretical particle physicist.
Second of all, you have no, you know, really,
it's just kind of an arrogant thing to say,
we know the answer.
I mean, we've never detected dark matter,
and we may never detect dark matter,
except for the neutrino,
which you talk about in the book.
So you say that,
the nine realms interlock like gears. Okay, so here's my gears. See that?
Ooh, you got some nice toys. Kind of mesmerized. You know, it's good to have kids, you know,
that know how to do 3D printing. You know, you get brains, you get, you get alien artifacts.
But you say two of these realms, two of these gears, if you will, refuse to play nice.
They grind catastrophically. They won't pass through each other. Quantum field theory predicts
a vacuum energy density. It's 120 orders of magnitude larger than what we observed. So how do the
nine realms? How do they handle the clashing?
between the quantum realm and the cosmological realm.
We're in the neighborhood of the dark realm now.
And dark, you know, it started off with not emitting light, but now I take it as a statement
about our knowledge, right?
We're in the dark.
We definitely see real physical phenomena, but the explanations for those physical phenomena
are, you know, we come up with our best models.
We go looking and we're like, ah, that's not it, you know.
And so how do we really converge?
on what the truth of the dark realm is.
And how, you know, it, you know,
I feel like right now,
there needs to be some revolution in thought
that I don't know what that is.
My very first physics experiment
was working with Bernard Satelli
in the basement of LeCont Hall in Berkeley
on what would become the CDMS, you know,
cold dark matter search experiment.
You know, I thought, oh yeah,
we're gonna know what dark matter is soon.
We're direct detecting it.
And then, you know, after I left Silicon Valley,
I joined a Superdemehury
of a cosmology project, right?
We should just, you know, participated in discovering dark energy five years earlier.
And I'm like, oh, yeah, we're going to, you know, build a satellite and, you know, put these
new detectors on these telescopes and we're going to know what dark energy is in five years or so.
And we don't, right?
We have a lot of confidence in our quantum mechanics because of its experimental successes.
And everything else, you know, like GR is, okay, maybe there's something there.
but GR has been so successful in so many different scenarios.
You know, I'm not one to say that it's incomplete,
but there is this battle going on,
just pushing this pull that we have yet to resolve.
So I'm fine with open questions.
I'm fine with we don't know, let's keep searching.
But the thing I'm not fine with is you can't think that thought,
you can't think that thought,
you can't allow that person to participate.
You know how it is when you're a physicist.
All kind of people write you with their crazy ideas.
And sometimes I look at them and I'm like, you know,
most of the time, right? I'm like, ah, this is nothing. But sometimes I'm like, oh, wow,
that's interesting. You know, so I think the answers can come from anywhere, even maybe even
a seven-year-old. Like, look who's breaking all the records in Rubik's Cube solving, right? They're
babies. Yeah, that's right. You and I, you know, are operators, physicists, as scientists,
and we know that there are tensions. We know that there are battles, not unlike, remember
the 1980s, the 90s, the rap battles, you know, East Coast, West Coast. I was not on the West Coast
at that time, so I was still in the firmly in the Biggie Smalls camp, but no hate towards
the other side. But you and I have this, you know, kind of, I'm working the CMB instrumentation
field. You were involved in the supernova, you know, cosmology project. And, you know, we study
different realms of the cosmos, later realm, early realm that most people would say, oh, it's,
you study saying it's up two billion years old. I study something that's 13 billion years old.
Oh, that's really close. No, they're totally different. So how does a, how does a layperson
interpret when scientists, or each seem like they're brilliant when they disagree so violently as, as we
do in the scientific realm, of course? So in the dark energy, you know, kind of
kind of, or in the Hubble constant wars that we're experiencing now.
The Hubble tension, you and Adam Reese talked about Nobel Prize winner, Fred of the podcast.
How do you interpret that?
You've two brilliant people, two brilliant types of technologies.
How does a layperson make a decision not like, hey, the universe might be a billion years younger than we thought?
I would say to the layperson as we watch these, number one, it doesn't mean that we don't know anything.
Because that's where a lot of people think.
Oh, they don't know details.
That means they know nothing.
That is not the case.
The other thing is that the culture of science is weird to raise.
regular people. And sometimes regular people get caught up in our little battles like, oh, do black
holes have hair? You know, it's quantum information loss. And I'm like, you know, sometimes we make too
big of a deal of these little nerdy things. But Adam Reese is like, no, this humble tension is a big
deal. I always go back to observation and data. And I think experiments like the Nancy Grace Roman
telescope and the Vera Rubin telescope are going to fill in those gaps between the nearby
universe and the far universe, right? Because the supernovae don't go that far. And the CMB is very, very, very
far, right? There's a big space in between. And the other thing we haven't done, you know,
model the universe as a uniform gas, right? And so we assume that the expansion rate is the same
in all directions. One experiment that I wanted to do when I was a young scientist just becoming a
professor is measure redshift drift. I wanted to actually see the red shift of galaxies changing
with time. And I was trying to think of clever ways like, oh, what if I use time dilation, like move
a spacecraft incredibly fast? And, you know, could I get something from doing that? The measurement
seem to have been really solid.
All you smart people have looked at them
and looked at the possible systematic uncertainties
that may be plaguing these results.
And, you know, it's all in that uncertainty measurement.
It's all in that error bar.
And those error bars are not overlapping.
And knowing the culture of science,
people hate each other, right?
People, you know, there's no conspiracy
to come to the same answer.
If there's any conspiracy,
it's a conspiracy to get the other guy.
I'm accepting where we are right now
and waiting for the new data.
We're recording this on April 10th,
which is the afternoon that the astronauts on Artemis II are scheduled to splash down right off the coast of UC San Diego near script.
And I want to talk to you about a couple things.
One is, you know, I've seen you all over ABC News.
And I was just like, you did such a good job.
You're just so, like, calm.
And, you know, when I go on a podcast sometimes, I'm, like, nervous.
And you're talking to millions of people live on the biggest event in the space-faring histories that most of us have been around for.
You talked a little bit about Victor Glover, who was the first black man to go ever into deep space around the moon.
You're a black astrophysicist.
You grew up in the streets.
Your first book's about being a drug dealer, right?
I mean, this milestone mean to you.
You've done so much in your life.
And if anyone ever doubts your credentials,
you've got a stack a resume that can reach the moon.
So what does it mean, first of all,
to see a black man making history like that?
It matters.
A lot of people are averse to discussions
about identity and race.
But I tell you, it absolutely does matter, man.
When I was a kid, you know,
I remember that any time there was a black person
that made one of these revolutionary breakthroughs,
and it became knowledge to us.
We were so proud of them.
It was like a member of your own family had done it.
And what's hard to understand about the psychology
is when you feel that the world is messaging to you all the time,
the opposite of that, that you don't have value,
that you're not capable of things and that sort of thing.
So, for example, how did I get accepted in the Stanford University
was in part due to William Shockley, the Nobel Prize winner?
You could go on YouTube today and find himself,
saying things like there's no point in trying to educate black folks. They're just not capable of it, right?
This is not something that is, you know, make believe. And the thing is, is that if you're not
subject to it and you're not doing it, it's invisible to you. Because, you know, it's like,
you know, if you're Jewish, if you're a woman, almost no matter what you are, there is some
specific hatred that you receive that other people don't receive. And if you see someone like
yourself do something good, you know, it could be like, oh, my fellow Napoleon, right?
right, you're going to feel pride in that.
And the fact that we've come so far, you know, I think one thing about us as Americans,
we don't give ourselves enough credit, man.
I think that, you know, if you want to paint America in black and white,
black people and white people have come so far, right?
And we need to give credit to that, man.
Like literally, when I left Mississippi, you know, I thought, oh, every white person is racist.
Not true.
Not true.
Never be a black president.
Barack Obama was running.
You know, Chris Rock had this junk where he was like, Barack, you got the most votes.
Too bad you lost, right?
Like, he could never happen, right?
I thought that, man, but I tell you, you know, we are better.
We are better than we give ourselves credit for.
And I feel that people are good fundamentally.
I've been to 44 countries.
I know a world of people.
And I curate the humans in which I interact with.
And I often say I don't choose people I interact with based on how they look.
I choose it based on how they feel.
A lot of my mentors in the 21st century have been white women, right?
There's been people that have been so I wouldn't be here, right?
You know, the dudes that that mentored me early in my career, Richard McGinnis, David Thiel, Gerald Bruno, these were three white dudes who came from elite universities, Caltech, Harvard, Cornell, and decided in the 60s that they wanted to help out with the civil rights movement.
Go down to Mississippi, right?
They had strong Christian faith.
That's what led them there.
And they end up spending their entire careers at Tuguloo College, right?
And they created me and my Tuguloo College colleagues, right?
And man, that is what we're made of as human beings.
If a cat walks into my lab, I don't care who and what they are.
And so what does that mean?
My lab group used to be like the group of outcast, right?
The gay students, the women, the people who felt like, you know,
Hakeem is non-judgmental.
I feel comfortable with him, right?
Those are the people.
But I see the value in all people.
And, you know, I see the beauty and the ugly, as I like to say.
That's what it means to be a mature, you know, thinking individual.
And I think it's a perfect place to end up with a final question
that you end the book with the realm of the imagination.
I love that because I was the former and one of the founders of the Arthur C.
Clark Center for a human imagination here at UCSD.
And we met at a Clark Awards for the first time.
And all of a sudden I said, is that Hakeem O'Shea?
I never met you.
We were giving an award to Michi Okaku about five years ago.
So you like that imagination is, quote, an evolutionary imperative.
So my question is, if that's true, you know, why are there so many Kardashian?
No, no, if that's true, you know, what happens to a species that stops imagining?
And how can we avoid that with our kids, with our society, with humanity as a whole?
Man, I think that because we do start off as children, you know, children, they're not going to listen to you.
They're going to do their program, right?
It's kind of like the mother doesn't make the baby.
The baby is a parasite that makes itself, right?
And our children, you know, the evolutionary pressures that brought us here gave us this imagination, that gave us this brain, this moment.
million brain that was able to self-organize in different ways to become smarter and smarter
and imagine more and more.
And now it's given birth to AI, right?
Which makes she develop its own imagination.
Currently, its imagination sucks, but, you know, there's no actual limit to what it can do
theoretically, right?
So I don't think that that is a question we ever have to wonder, but I do think that how you
nurture those imaginations matters, right?
There's something that has to do with the American system that we keep dominating in these imaginative technologies.
And I don't know what that is, right?
What was it about the Germans in the early 20th century that led them to dominate physics?
What was it about the British in the 19th century that had them dominating physics, right?
You know, I don't know, but I do know that there are cultural elements and there are structural elements involved.
And so, you know, structurally, we have the people, the government, right?
They take their taxes and they invest in imagination at the universities.
And then we have systems to commercialize what we come up with.
And, you know, in some ways, we've pulled back recently, right?
A lot of the government investment is pulled back.
We have this massive almost $40 trillion deficit or having a situation like that.
Where do you want to sink your money in into investments that are going to grow, right?
That's where you want.
And the greatest investment, the greatest sustainable resource we have is the human imagination.
I do hope that people will start to really see themselves in these positions that you have really paved away for, for both scientific literacy.
But also, I always say communicating to the public is probably the top job of the scientist that we never do because, oh, it's like, that's for like slick, you know, people to do.
And Neil DeGrasse Tyson and Brian and all these.
They can do that.
But a real scientist does it.
No, that's not true.
It's something that's hard.
You have to work on it.
And it's a moral obligation to give back to the taxpayers who fund us.
and since you told us that the universe is not going to end before April 15th,
I really do appreciate that little bit of non-tax advice.
Hakeem, thank you so much, my friend, and congratulations on this awesome book.
Thank you, Brian. I appreciate you, sir.
Hakeem just made a claim almost no physicist will make on camera,
that he can flow from cold to hot,
and that the universe is in the midst of a program to destroy all matter
while it still lets people like us exist.
If that reframes anything you think about how you fit into the cosmos,
hit subscribe and turn on notification so you don't miss where this argument goes next.
Drop a comment telling me which of the mind-blowing realms you'd most like to fall into or rise up to meet you.
And if you want to go deeper, check out my conversation with Avi Loeb on what counts as evidence for alien visitation and what doesn't.
I'll link it right here.
Thanks for watching.
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