Einstein CentennialExplainer
Is the Universe Truly Random?
A rolled die is unpredictable but not mysterious. Quantum events may be different. Here is where science draws the line, and where the debate begins.
THE UNIVERSE EXPLAINER
Not really holes and not cosmic vacuum cleaners, black holes are places where matter is packed so tightly that not even light can climb back out.

THE SHORT ANSWER
A black hole is a region where matter is packed so tightly that nothing can escape its gravity, not even light, once it crosses the edge called the event horizon. Black holes are real: astronomers have imaged the glowing gas around two of them and detected hundreds of collisions. What happens inside, and to information that falls in, is still unknown.
A black hole is a place where a huge amount of matter has been packed into a very small space. Its gravity is so strong that anything crossing a certain boundary can never get back out, not even light. That boundary is called the event horizon. It is not a solid surface. Think of it as a point of no return, like the lip of a waterfall where the current becomes too fast for any boat to paddle back.
Black holes are real. Astronomers have watched stars race around one at the center of our galaxy, imaged the glowing gas around two of them, and detected hundreds of them colliding. What nobody knows yet is what happens deep inside, or whether anything that falls in is truly lost.
The most familiar kind starts with a giant star. When a star with more than about eight times the Sun’s mass runs out of fuel, its core collapses and the star explodes as a supernova. If the star had around 20 times the Sun’s mass or more, the leftover core keeps collapsing into a black hole, according to NASA. These “stellar-mass” black holes weigh a few to hundreds of Suns.
To turn the Sun into a black hole, you would have to crush it into a ball only a few kilometers across. Then there are the giants. Almost every large galaxy has a supermassive black hole at its center, weighing from hundreds of thousands to billions of Suns. Ours, called Sagittarius A* (say “A-star”), has about 4 million times the Sun’s mass. How the giants grew so big so early in cosmic history is still a mystery.
Just weeks after Einstein published general relativity, his theory of gravity, the German astronomer Karl Schwarzschild found a solution to its equations that described what we now call a black hole. Einstein himself doubted such objects really existed. In 1965, the British physicist Roger Penrose showed that black holes really can form according to Einstein’s theory. He shared the 2020 Nobel Prize in Physics with Reinhard Genzel and Andrea Ghez, whose teams tracked stars whipping around Sagittarius A*.
Gravity pulls harder on things that are closer. Near a black hole, the pull on your feet could be far stronger than the pull on your head, and that difference would stretch you out. Astronomers really do call this spaghettification. NASA describes it as matter being squeezed from the sides and stretched lengthwise, like a noodle.
Surprisingly, a giant black hole may be gentler at its edge. The official Nobel Prize explainer says you would not feel anything special while falling through the event horizon of a supermassive black hole.
Black holes are also not cosmic vacuum cleaners. From far enough away, a black hole pulls just like any other object with the same mass. If the Sun were swapped for a black hole of equal mass, NASA explains, the planets would keep their orbits, though they would get very cold.
What lies at the very center is unknown. Einstein’s theory predicts a singularity, a place where the known laws of nature break down. No tested theory yet tells us what really happens there.
We watch what black holes do to their surroundings. On April 10, 2019, the Event Horizon Telescope team released the first image of a black hole: the giant in the galaxy M87, about 55 million light-years away and 6.5 billion times the Sun’s mass. The team linked eight radio observatories across the planet into one Earth-sized virtual telescope. The image shows a glowing ring of hot gas around a dark center, the black hole’s “shadow” (ESO).
In May 2022, the team revealed an image of Sagittarius A*, about 27,000 light-years away. It is more than a thousand times smaller and less massive than the M87 black hole, yet the two look remarkably alike. The size of the ring matched the predictions of Einstein’s theory.
We can also listen. On September 14, 2015, the LIGO detectors caught gravitational waves, tiny ripples in space itself, from two merging black holes, each roughly 30 to 40 times the Sun’s mass. The signal had traveled about 1.3 billion years to reach us. By 2025, the LIGO, Virgo and KAGRA detectors had recorded about 300 black hole mergers, some confirmed and some still being analyzed. More in How Did We “Hear” Gravitational Waves?
One 2025 signal, called GW250114, was so clear that scientists could test a rule Stephen Hawking proposed in 1971: when black holes merge, their total surface area should never shrink. The two original black holes had a combined area of about 240,000 square kilometers. The merged one had about 400,000. Hawking’s rule held.
Maybe not. In 1974, Hawking combined Einstein’s gravity with quantum physics, the rules of the very small. His math said a black hole should give off a faint glow of heat and slowly lose mass. This glow is called Hawking radiation. Given enough time, a black hole could evaporate completely (Stanford Encyclopedia of Philosophy).
Hawking radiation has never been observed. For real black holes, it is far too weak. Sagittarius A* would glow at about one hundred-trillionth of a degree above absolute zero. Even a black hole with the Sun’s mass would be only about 60 billionths of a degree above it. The leftover glow of the Big Bang, at about 2.7 degrees above absolute zero, drowns that out completely.
Lab experiments with flowing water, laser light, and ultracold atoms can mimic parts of a horizon, and several teams report an analogue of Hawking’s glow. How much these tell us about real black holes is still debated.
The biggest puzzle is about information. Quantum physics says the details of a system are never truly erased. Burn a letter, and in principle the smoke, ash, and heat still carry every detail of what was written, even if no one could ever read them back. But if a black hole swallows the letter and then evaporates into featureless heat, the details seem to vanish. Hawking raised this clash in 1976. It is called the information paradox.
In recent years, theorists have found new ways of calculating that suggest information may leak back out after all. But this work mostly uses simplified model universes, and no experiment can check it yet. The question remains open. So does the nature of the singularity. Both point to the same gap: we lack a tested theory that joins gravity and quantum physics. That search is the subject of Is There a Theory of Everything?
A black hole is where our two best descriptions of nature, gravity and quantum physics, are forced to meet, and where they do not yet agree. That makes it one of the best places in the universe to keep asking questions. If living with open questions feels uncomfortable, try The Courage to Say “I Don’t Know”.
WHERE THE EVIDENCE STANDS
WORDS WORTH KNOWING
KEEP ASKING