About 80 percent of the mass of the cosmos is thought to consist of dark matter. Scientists are not sure what it is, but believe that it could consist of unidentified, theoretical particles such as axions. The axion was originally proposed as a solution to an unexplained problem in the realm of particle physics known as the strong CP problem.
Galaxies are collections of stars, cosmic dust, planets, gas and dark matter often circling a supermassive black hole at the center. Galaxy clusters are groups of hundreds or thousands of galaxies bound together by gravity.
Sources: Nasa, Associate Professor Oleg Ruchayskiy
The axion is a hypothetical elementary particle that could hold the key to understanding dark matter, an unknown material that is believed to take up about 80 percent of the mass in our universe.
No one has yet proven the existence of axions, which has eluded researchers for decades. But with a clever trick involving faraway galaxies, physicists from the University of Copenhagen possibly came closer than ever before.
Instead of using a particle accelerator on Earth, like the one at CERN, the researchers turned to the cosmos and used it as a kind of gigantic particle accelerator. Specifically, they searched for electromagnetic radiation emitting from the cores of distant and very bright galaxies, each with a supermassive black hole at its center.
They then observed this radiation as it passed through the vast magnetic fields found in galaxy clusters, where some of it could hypothetically transform into axions. This transformation would leave behind tiny, random fluctuations in the data. But each signal is so faint that, on its own, it gets lost in the background noise of the universe.
So, the researchers introduced a novel concept. Instead, they observed a total of 32 supermassive black holes positioned behind galaxy clusters and then combined the data from their observations.
When the researchers examined the data, they were surprised to discover a pattern that resembled the signature of the elusive axion particle.
“Normally, the signal from such particles is unpredictable and appears as random noise. But we realized that by combining data from many different sources, we had transformed all that noise into a clear, recognizable pattern,” explains Oleg Ruchayskiy, Associate Professor at the Niels Bohr Institute of the University of Copenhagen and senior author of a new paper in Nature Astronomy that tries to study the axion. He adds:
“It shows up like a unique step-like pattern that shows what this conversion could look like. We only see it as a hint of a signal in our data, but it is still very tantalizing and exciting. You could call it a cosmic whisper, now loud enough to hear.”