Astrum Space - We Caught a Black Hole Switching On For the First Time
Episode Date: August 29, 2026Scientists have spotted something firing out “cosmic bullets” into space at nearly the speed of light. The culprit: a supermassive black hole that’s waking up and turning into a quasar… with d...eadly consequences for its entire galaxy. In this video, we’ll find out how a black hole can kill a galaxy, and whether we should be worried for our own. ▀▀▀▀▀▀Explore the night sky with DWARF mini: https://bit.ly/4wE0rm4. Use code ASTRUM5 at checkout. ▀▀▀▀▀▀Astrum's newsletter has launched! Want to know what's happening in space? Sign up here: https://astrumspace.kit.comA huge thanks to our Patreons who help make these videos possible. Sign-up here: https://bit.ly/4aiJZNF
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In August 24, the newly launched Chrism Observatory turned towards a tiny point of light in the Lephus constellation,
and its advanced X-ray instruments detected something truly extraordinary.
There, at the centre of two colliding galaxies, a monstrous black hole had awoken from an eons long slumber
and started firing cosmic bullets into space at blitz.
glistering speeds. These highly energetic outflows had long been thought to play a pivotal
role in the evolution of galaxies, but never before have they been observed in such detail
in a galaxy system undergoing intense star formation. This groundbreaking observation is giving
scientists a critical insight into one of the most turbulent relationships that exist in all
cosmology, that of a galaxy and the supermassive black hole that lies at its heart.
The question is, what can it teach us about our own galactic home?
I'm Alex McColgan and you're watching Astro. Join me today on an odyssey of creation and destruction,
as we witness epic intergalactic collisions and the jets their black holes produce,
events that are thought to play a pivotal role in the lives and deaths of galaxies.
We'll take a closer look at the X-ray technology scientists are used.
using to probe the sleep-wake cycles of supermassive black holes and discover just how much
their fates are intertwined with that of the galaxies they call home.
In our universe, almost all large galaxies are believed to share one mind and light-bending feature,
a supermassive black hole at their core. These are colossal objects with masses hundreds of
thousands or even billions of times that of our sun. Take for example Sagittarius A-star,
the supermassive black hole that lies at the heart of our own Milky Way. The latest observations
suggest this black hole is more than 4 million solar masses, contained within a radius
smaller than the orbit of Mercury around our sun. The largest galaxies are thought to be
home to true Leviathans, with the black hole at the center of the cosmic horseshoe system,
estimated to be a staggering 36 billion solar masses.
Yet, surprisingly, most of these black holes aren't out there hoovering up vast quantities of matter.
Instead, they lie dormant, only revealing their presence through the gravitational effects
they exert on the stars that orbit them, or the light that passes nearby.
Indeed, it's thought around 8 billion years have passed since Sagittarius A-star,
went through its most active period of feeding or matter accretion.
So why do supermassive black holes go through periods of intense activity
before returning to dormancy?
And what effect do they have on the life cycles of their host galaxies
when they are at their most awake?
Our cosmos offers up one important clue.
Thanks to telescopes like Hubble,
astronomers have now identified thousands of galaxy systems scattered across the sky,
with chaotic and tortured forms.
We don't think these are actually single galaxies at all,
but violent, slow-motion galaxy collisions
that over hundreds of millions of years
transform smaller galaxies into larger ones.
This process is called galaxy merging,
and it is now thought to be one of the dominant ways
in which larger galaxies come into being,
particularly elliptical galaxies.
Unlike rotating spirals like our own Milky Way,
elliptical galaxies appear smooth and featureless.
Their stars orbit in random directions,
and they show very little star formation.
And astronomers believe this may be related to how they co-evolve
with the supermassive black holes that lie at their hearts.
The theory goes as follows.
As two smaller spiral galaxies approach,
they are distorted and stretched by powerful,
tidal forces. Stars are ejected from their previous orbits and vast clouds of dust and gas
begin collapsing under gravity. This ignites a phase of furious star formation, where new stars
can pop into being at a rate up to 100 times higher than that found in other galaxies.
Astronomers refer to this phase as starburst. But not all of the disturbed gas and dust in a galaxy
emerging system is destined to become new stars. Instead, powerful gravitational forces begin
drawing much of it directly to the galactic core, awakening the dormant monster at the center,
the supermassive black hole. Space is full of some really impressive sights. Just this month,
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The dwarf mini might capture images, but we're talking about capturing matter,
and for that, supermassive black holes are king.
As matter spirals inwards, it forms an accretion disk that forces particles closer and closer together
until they collide, converting kinetic energy into heat,
meaning that as matter approaches the event horizon, it forms a plasma,
in which temperatures climb towards 12 million degrees Celsius.
This process converts the center of the galaxy into what's known as an active galactic nucleus,
a structure that generates so much light from frictional forces that it outshines all the stars in the galaxy combined.
As the black hole at its center gorges on inward flowing matter,
the high speed of charged particles in the accretion disk leads to the formation of potent magnetic fields.
At the same time, high-energy photons emitters,
from the super hot plasma, exert a powerful outwards pressure called radiation pressure.
Together, these effects are thought to eject some of the material away from the accretion
disc as winds, the most powerful of which are known as ultra-fast outflows.
Streams are particles whose speeds have been measured as being as high as 90,000 kilometers
per second, a staggering 30% the speed of light.
and it's these ultra-fast outflows, nicknamed cosmic bullets,
scientists believe could play a pivotal role in the life of an emerging elliptical galaxy.
The idea is that as these cosmic bullets stream into space,
the high-energy particles interact with cold, dense clouds of gas that are feedstock for star formation
and disperse them, a process that ultimately kills the galaxy's ability to generate new stars,
This quenches the star base and the galactic nucleus metamorphosis into a quasar.
A system where black hole activity is so powerful, it outshines its host galaxy by up to 1,000 times,
and of course suppresses any further star formation.
The quasar phase can last for tens or even hundreds of millions of years,
until the black hole finally exhausts its food supply of gas and dust. Only then will the
supermassive black hole returned to dormancy, allowing the new galaxy to settle into its final,
mature elliptical phase.
It's a neat theory.
However, it's one for which the critical stage, where both style formation is still underway
and the black hole is waking up, had never been fully observed until the X-ray
imaging and spectroscopy mission entered the stage, that is.
Led by Japan's Jaxa, the X-ray imaging and spectroscopy
mission, or Chrism for short, launched in September 2023.
It carried two new generation instruments into orbit, a wide-angle X-ray camera and a
spectrometer called Resolve that is capable of picking up the most detailed X-ray spectra
ever collected. Because X-rays are generated at extremely high temperatures, together these
instruments allow Chrism an unprecedented view into some of the most violent and energetic
objects in our cosmos, such as supermassive black holes in active galactic nuclei.
For the first six months of operations, Chrism was in its performance verification phase,
the aim of which was to provide the scientific community with data to confirm the telescope
could achieve its mission goals, and to showcase its transformational science abilities.
And it was during this phase in August 24, the chrism observed an active galactic nucleus
in a galaxy merger,
603 million light years from Earth.
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Now, this may not look like the snappiest of names, but within it lies a clue as to what
makes this particular system so attractive to researchers.
Iris stands for NASA's infrared astronomical satellite, which launched in 1983 and was the
first orbiting telescope to perform an infrared survey of the sky.
IRS 0159-24 was one of a new type of galaxy discovered by the satellite,
galaxies that were enveloped in such thick clouds of dust and gas
that any UV and visible light they produced was absorbed and re-emitted in the infrared.
They may be invisible to the naked eye,
but these galaxies, named ultraluminous infrared galaxies,
radiate more than a hundred times the energy emitted,
emitted by the Milky Way, and the reason they glow so intensely is that those thick clouds
of dust and gas were found to be sites of intense star formation.
IRIS 01524 is a galaxy merger in the throes of starburst.
The chrism team, including Associate Professor Noda Hirofumi, and Assistant Professor Yamada
Satoshi of Tohoku University, knew that as well as being
surveyed in infrared, it had also been previously studied in the X-ray band. Within that data,
with tantalizing clues that this supermassive black hole may have begun to activate. These suggested
that this galaxy merger could be at a critical point in its evolution, in which it transforms
from a starburst galaxy into a quasar. This is a transitional change, so it to only last tens of
millions of years, a blink of an eye on cosmic timescales, making it a rare and extremely
valuable natural laboratory for studying the feedback mechanisms between a black hole and its
home galaxy. And it had never before been observed by an X-ray observatory with the pure resolving
power of Chrism. Like other X-ray observatories, Chrism can study the ultra-fast outflows from
active collective nuclei by looking at the spectra produced from what are referred to as
helium and hydrogen-like iron atoms found within the outflow winds.
You may be forgiven for thinking, how can iron be like hydrogen or helium?
Well, these are iron atoms that are stripped of all but two of their electrons,
so each resulting iron ion has an incredible 24 or 25 positive charge.
When x-rays emanating from the vicinity of the black hole are absorbed and re-emitted by
one of those iron ions, a characteristic signal emerges at 6.7 kilo-electron volts and 7 kilo-electron
volts, respectively. Using these, scientists can work out just how fast the iron ions within
the ultra-fast outflows are travelling by looking at how much the signals undergo something
called blue shift. Of course, you've almost certainly heard of redshift, the process by which
light is stretched towards the red end of the electromagnetic spectrum.
when it is emitted by stars and galaxies as they move away from Earth,
the famous evidence that proved that universe is indeed expanding.
However, in our little corner of the universe,
where the force of gravity can overcome the local expansion of the universe,
there are a few bodies whose motion produces the opposite effect.
Light waves are squeezed to the blue end of the spectrum.
The most famous example of this is the Andromeda Galaxy,
whose slightly blue-shifted light indicates it is actually,
moving towards the Milky Way at around 110 kilometers per second.
But a more distant galaxy, like IRAAS 0589-2524, can also lead to blue-shifted light when
it is ejecting material at high speed in our direction, material like those ultra-fast outflows
fired by supermassive black holes.
It's by looking at the degree to which the helium-and-hydrogen-like iron spectra
are blue-shifted that allows researchers to calculate the speed at which the outflows are traveling.
This is exactly the approach that members of the Chrism team were using to interpret the spectra from
this galaxy when they found something astonishing.
Where previous X-ray studies of the system had found one blue-shifted peak at around 7.5
kilo-electron volts, Crism's more powerful resolving power found three peaks corresponding to three
discrete speeds. This means that the supermassive black hole at the center of the galaxy
was spitting out multiple bullet-like outflows of material that were traveling at 7.5%, 10%, and 14% of the
speed of light. The team were also able to calculate the energy carried by these winds and found
it was more than a hundred times faster than the slower molecular winds spreading through the galaxy,
certainly sufficient to suppress the explosive star formation that had been observed in the infrared
observations. The team also used Chrism's X-ray camera to image the rest of the galaxy merger
and revealed that the central supermassive black hole was already absorbing vast amounts of matter,
in fact close to the limit of what is possible for a black hole to consume. That's known as the
Eddington limit, and I've got another video about that you can watch here. They are confident that it's this
violent accretion of matter that is generating the bullet-like outflows observed by the spectrometer,
and at the heart of the galaxy, the Kristen team have explained, is a black hole coming out of an
aeon's long hibernation, and it's announcing its presence to the host galaxy with a roar.
Put together, these findings are some of the strongest evidence to date, that it is indeed
the gargantuan consumption of material by supermassive black holes that kills rapid-style formation
emerging galaxies, ultimately leading to the emergence of giant elliptical galaxies with
their low rates of star formation.
Of course, there is still much to learn.
The christen team are keen to revisit the galaxy to see if the bullet-like activity of the
supermassive black hole varies at all over time, and to work out if any further ultra-fast
outflows can be identified.
And looking to the future, in the late 2030s, the Issa-led new assessment.
Athena mission will launch.
This large-scale international X-ray observatory will be equipped with an even more advanced
spectrometer than Chrism.
This will allow scientists to investigate each of the evolutionary stages of galactic growth,
from the initial collisions to the peak of quasar activity in more detail.
But for now, this work provides an unprecedented window into the forces that govern the lives
and deaths of galaxies, including our own.
Remember the Andromeda galaxy that is hurtling towards us at 110 kilometers per second?
It has long been thought that in about 5 billion years it will collide with the Milky Way,
initiating a galaxy merger on our own doorstep.
And even though the latest calculations have downplayed the chance of this event coming
to pass to around 50%, if it does, both the Milky Way and Andromeda galaxies will cease to exist
in a fury of starburst, and a new, more massive elliptical galaxy will take their place.
And then, as the colossal clouds of dust and gas are stirred up by tidal forces,
Sagittarius A-star, the supermassive black hole at the heart of the former Milky Way
will awake from its billion-year slumber and begin feasting again,
firing out its own cosmic bullets that will ultimately dictate the star-forming power of its new galactic home,
a place that will contain the broken remnants of our own cosmic haven.
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