The UniverseExplainer
What Is Dark Matter?
Galaxies spin too fast and light bends too much, so something unseen seems to be out there, but nobody yet knows what it is.
THE QUESTION LIBRARY THE UNIVERSE
We can’t see dark matter, but we can measure its pull in five different ways, so here is the evidence, the case for changing gravity instead, and what is still unknown.

THE SHORT ANSWER
We know it from its gravity. Stars at the edges of galaxies orbit too fast, galaxy clusters hold together too tightly, and light from distant galaxies bends more than visible matter can explain. The pattern in the oldest light in the universe points the same way. So the pull of unseen mass is well measured. What that mass is made of is still unknown. No lab has clearly caught a dark matter particle, and some scientists think gravity itself needs changing instead.
WHERE THE EVIDENCE STANDS
WHAT WE DON’T KNOW YET
Nobody knows yet what dark matter is made of. It could be one new kind of particle, several kinds, or something else. Scientists also still argue about why some galaxy patterns fit a simple modified-gravity rule so well.
WHAT WOULD CHANGE THIS ANSWER
A clear, repeated detection of a dark matter particle in a lab would tell us what it is. A single theory of gravity that fits galaxies, the Bullet Cluster and the oldest light with no unseen mass would force scientists to rethink dark matter.
We know dark matter is there because of its gravity. We can’t see it, but we can see what it does. Stars, gas and whole galaxies move as if something heavy and invisible is pulling on them. Light from faraway galaxies bends around it. The same answer shows up again and again, from many kinds of measurements.
People ask this for good reasons. “Invisible stuff that makes up most of the matter in the universe” can sound like a fudge. Why believe in something no one has seen? That is a fair question, and it deserves a straight answer, not “trust the experts.”
Here is the core picture. In 1933, the astronomer Fritz Zwicky studied a group of galaxies called the Coma Cluster. The galaxies moved so fast that the cluster should have flown apart. In the 1970s, Vera Rubin and Kent Ford found something similar inside single galaxies. Stars near the edges moved about as fast as stars closer in. Without extra mass, those outer stars should have moved more slowly.
Later tests came from new directions. Heavy things bend light, so astronomers can weigh a cluster by how much it warps the galaxies behind it. In the Bullet Cluster, two clusters that crashed together, most of the mass sits apart from the hot gas that holds most of the normal matter. And the oldest light in the universe, mapped by the Planck satellite, carries a pattern that fits about five times more dark matter than ordinary matter.
So the extra gravity is well measured. We label that Established. What dark matter is made of is a different question. No lab has clearly caught a dark matter particle yet, and some scientists think our law of gravity needs fixing instead. That part is an Open question, and this page walks through both sides.
The story starts with speed. The faster things move in a group, the more gravity it takes to hold the group together. So if you measure how fast things move, you can estimate how much mass must be there.
In 1933, the Swiss-born astronomer Fritz Zwicky did this for the Coma Cluster, a big group of galaxies. His estimate used only seven galaxies, but it was striking. To explain their speeds, he wrote that the cluster’s average density would have to be at least 400 times greater than the glowing matter suggested. He called the unseen material “dunkle Materie,” German for dark matter. A modern translator notes that Coma’s speed spread, measured today from more than 1,000 galaxies, is very close to what Zwicky found. Still, NASA says the idea stayed on the fringe for decades.
That changed in the 1970s. Vera Rubin and her colleague Kent Ford measured how fast stars and gas orbit in spiral galaxies. Their tool was a very sensitive spectrometer built by Ford, which measures the light an object gives off at different wavelengths, or colors. According to the Rubin Observatory, they studied more than 60 galaxies. Stars at the outer edges moved about as fast as stars nearer the center.
Why is that strange? Think of our solar system (an analogy, and it only goes so far). Almost all its mass sits in the Sun, so Neptune crawls along much more slowly than Earth. A galaxy’s visible mass is also packed toward its middle, so its outer stars should slow down in the same way. A review by the astronomers Benoit Famaey and Stacy McGaugh sums up the result: rotation curves of spiral galaxies stay roughly flat, again and again, out to the farthest points that can be measured. The simplest fix is a large, roughly round halo of unseen mass around each galaxy. The analogy breaks here: a galaxy is not a sun with planets, and its mass is spread out, but the logic of “more speed needs more pull” carries over.
Einstein’s theory of gravity says mass bends the path of light. A heavy galaxy cluster acts a bit like a lens. It stretches and shifts the images of galaxies far behind it. This is called gravitational lensing. By measuring how much those background galaxies are warped, astronomers can map where the mass is, whether it shines or not. NASA describes doing this for clusters such as Abell 209.
The most famous case is the Bullet Cluster, formally 1E 0657-56. Two galaxy clusters collided there. NASA says it lies about 3.8 billion light-years away. In a crash like this, the pieces behave differently. The hot gas between the galaxies, which holds most of the normal matter, slams together and slows down. X-ray telescopes like NASA’s Chandra can see that gas. The galaxies themselves mostly sail past each other.
In 2006, a team led by Douglas Clowe mapped the mass with lensing. They found that the mass did not follow the hot gas. It followed the galaxies instead, and the offset was measured at 8-sigma significance, which means it is very unlikely to be a fluke of the data. Their paper argues that simply changing the law of gravity cannot explain the offset, so most of the matter there is unseen. In the famous NASA image, the pink glow is hot gas and the blue shows where the mass is.
The cosmic microwave background is light released about 380,000 years after the Big Bang, according to ESA. It is almost the same in every direction, but it has tiny hot and cold spots. Those spots record sound waves that rippled through the young universe. The pattern of the ripples depends on what the universe contained.
Ordinary matter got pushed around by light in those early days. Dark matter did not, because it doesn’t interact with light. That difference leaves a mark in the spot sizes. In their review, Famaey and McGaugh note that a universe without this extra, non-glowing matter should show a third ripple peak smaller than the second. Instead, the third peak is nearly as tall as the second. The Planck satellite’s final 2018 results measure a dark matter density about five times the density of ordinary matter.
The growth of galaxies points the same way. NASA explains that computer models with slow-moving, “cold” dark matter build a universe of galaxies and clusters like the one we see. Models with fast-moving dark matter do not.
This is the strongest objection, and it deserves a fair hearing. In 1983, the physicist Mordehai Milgrom asked whether the missing mass might really be a sign that Newton’s law of gravity changes at very low accelerations. His idea is called MOND, short for Modified Newtonian Dynamics. Instead of adding unseen mass, it changes the rule.
MOND has real successes. Famaey and McGaugh show that one simple rule predicts many patterns in galaxies, some before they were observed. That is impressive, and it is why some scientists still take it seriously.
But MOND has serious trouble elsewhere. The same review says that in galaxy clusters, MOND still needs two to three times more mass than we can see. So it needs some dark matter anyway. The review calls the Bullet Cluster an outstanding challenge for all MOND theories, though it adds that the Bullet’s high crash speed is also a puzzle for the standard dark matter model. The simple no-dark-matter version fails the test of the oldest light’s third peak. And in 2023, a study of 8,611 pairs of stars in wide orbits, using data from the Gaia space telescope, found that their motions fit Newton’s law far better than MOND. It excluded MOND at 16-sigma and concluded that MOND would need big changes at small scales to survive.
NASA says the existence of dark matter is now widely accepted, even though astronomers do not agree on what it is. The MOND debate still matters, because it keeps pointing at galaxy patterns that any full theory has to explain.
“Dark” does not mean black. NASA explains that it is called dark because it doesn’t absorb, reflect or give off light. Invisible would be a better word.
It is not dim ordinary stuff. Could it be faint stars, dead stars or rogue planets? The EROS-2 survey watched millions of stars for 6.7 years for the brief brightening that such objects cause when they pass in front of a star. It found only one possible event, where about 39 were expected if the halo were made of such objects. For objects around 0.4 times the Sun’s mass, that means they make up less than 8% of our galaxy’s halo mass. Across a wide range of masses, up to 15 times the Sun’s, they are ruled out as the main ingredient. The oldest light also sets the total amount of ordinary matter, and it falls far short.
It is not dark energy. Dark energy is the name for whatever makes the universe’s expansion speed up. Dark matter pulls things together. They are two separate puzzles, as our story What Is Dark Energy? explains.
It has not been caught in a lab, yet. The LZ experiment, a detector holding 7 tonnes of liquid xenon at the Sanford Underground Research Facility in Lead, South Dakota, hunts for dark matter particles bumping into atoms. Its 2025 results found no signal above the expected background. In September 2026, the team reported one unusual event at a high energy. They could not identify a background that explains it, but the tension with background alone was 2.6-sigma after accounting for the many places they looked. They did not claim a discovery. One event is a reason to keep watching, not an answer.
For a shorter tour of the same ideas, see our story What Is Dark Matter?
Optional detail for the curious. Why should outer stars slow down? For an object in a circular orbit, gravity supplies the pull that keeps it turning. If almost all the mass M sits inside the orbit of radius r, Newton’s law gives an orbital speed v with v² = GM/r, where G is the gravitational constant. So v falls off as one over the square root of r. Four times farther out means half the speed. This is the “Keplerian” decline seen in the solar system. Famaey and McGaugh note that spiral galaxies instead show roughly constant speed far from the center. If v stays the same while r grows, then M, the mass inside the orbit, must keep growing in step with r, even where there is little light. That growing, unseen mass is the dark matter halo. MOND takes the other road: it keeps M as the visible mass and changes the law at very low accelerations.
THREE THINGS TO REMEMBER
WORDS WORTH KNOWING
KEEP ASKING
See a mistake? Report a problem. Corrections are made openly.