Fusion reactors may generate dark matter particles

A new theoretical study suggests that future fusion reactors could produce axions, elusive particles potentially linked to dark matter. Led by a University of Cincinnati physicist, the research outlines how neutrons in these reactors might trigger reactions creating such particles. The idea echoes a puzzle from the TV show The Big Bang Theory that fictional scientists could not solve.

Physicists have proposed a method for detecting axions inside fusion reactors, building on decades of dark matter research. Jure Zupan, a physics professor at the University of Cincinnati, collaborated with scientists from Fermi National Laboratory, MIT, and Technion-Israel Institute of Technology. Their findings, published in the Journal of High Energy Physics, explore how these reactors could serve as particle detectors.

Axions are hypothetical subatomic particles that could constitute dark matter, which influences the universe's structure through gravity despite being invisible and non-interacting with light. Ordinary matter comprises only a small portion of the cosmos, with dark matter inferred from galactic motions.

The study focuses on a fusion reactor design using deuterium and tritium fuel within a lithium-lined vessel, part of an international project in southern France. High-energy neutrons generated during fusion would interact with the reactor walls, sparking nuclear reactions that might produce axions or similar particles. Another pathway involves neutrons slowing down and emitting bremsstrahlung radiation, potentially yielding these elusive particles.

"Neutrons interact with material in the walls. The resulting nuclear reactions can then create new particles," Zupan explained.

This concept revives an idea from season 5 of the sitcom The Big Bang Theory, where characters Sheldon Cooper and Leonard Hofstadter attempted but failed to make it work. "The general idea from our paper was discussed in 'The Big Bang Theory' years ago, but Sheldon and Leonard couldn't make it work," Zupan noted. The show featured equations comparing axion production in the sun versus reactors, highlighting the sun's greater output but suggesting reactors could use distinct processes.

While the sun offers higher chances for axion detection due to its scale, the researchers argue that fusion reactors provide a controlled environment for probing the dark sector. The work, detailed in a paper titled 'Searching for exotic scalars at fusion reactors' by Chaja Baruch and colleagues (DOI: 10.1007/JHEP10(2025)215), opens avenues for experimental verification as fusion technology advances.

Makala yanayohusiana

Physicists at Texas A&M University are developing highly sensitive detectors to uncover the nature of dark matter and dark energy, which comprise 95% of the universe. Led by Dr. Rupak Mahapatra, these efforts aim to detect rare particle interactions that occur infrequently. The work, featured in Applied Physics Letters, builds on decades of research into cosmic enigmas.

Imeripotiwa na AI

Astronomers may have glimpsed dark matter through gamma-ray emissions detected by NASA's Fermi telescope. A study led by Tomonori Totani suggests these signals arise from colliding weakly interacting massive particles in the Milky Way. While promising, the findings require further verification to confirm dark matter's presence.

Physicists from the KATRIN collaboration have reported no evidence for a sterile neutrino in a precise analysis of tritium decay data. The findings, published in Nature, contradict earlier experimental claims and strengthen the case against a fourth neutrino type. The experiment, based in Germany, continues to gather more data for further tests.

Imeripotiwa na AI

Researchers using the SNO+ detector in Canada have observed solar neutrinos converting carbon-13 into nitrogen-13, marking one of the lowest-energy neutrino interactions detected. This achievement relied on tracking paired light bursts separated by minutes. The finding builds on prior neutrino research that earned a Nobel Prize.

Ijumaa, 13. Mwezi wa tatu 2026, 17:21:24

Scientists reveal three discoveries in nuclear process creating gold

Alhamisi, 19. Mwezi wa pili 2026, 19:32:28

Researchers suggest galaxy's black hole may be dark matter

Jumamosi, 7. Mwezi wa pili 2026, 03:06:31

Astronomers propose dark matter core mimicking black hole at Milky Way's center

Jumatatu, 2. Mwezi wa pili 2026, 12:27:20

Scientists launch experiment to hunt forbidden antimatter transformation

Jumanne, 20. Mwezi wa kwanza 2026, 04:25:49

Simulations reveal dark matter signals from universe's dark ages

Alhamisi, 15. Mwezi wa kwanza 2026, 11:41:54

New research suggests dark matter started hot

Jumatatu, 5. Mwezi wa kwanza 2026, 12:43:18

Physicists uncover hidden order in high-energy proton collisions

Jumatatu, 22. Mwezi wa kumi na mbili 2025, 09:35:36

Scientists achieve breakthrough in black hole accretion simulations

Ijumaa, 19. Mwezi wa kumi na mbili 2025, 08:30:21

Scientists model dark matter detection using gravitational waves

Alhamisi, 18. Mwezi wa kumi na mbili 2025, 18:02:04

Scientists rule out sterile neutrino after decade of research

 

 

 

Tovuti hii inatumia vidakuzi

Tunatumia vidakuzi kwa uchambuzi ili kuboresha tovuti yetu. Soma sera ya faragha yetu kwa maelezo zaidi.
Kataa