Astronomy, Stellar, Planetary News
STELLAR CHEMISTRY
Undergraduate Students Build Axion Detector and Set New Dark Matter Limits with Minimal Resources
illustration only

Undergraduate Students Build Axion Detector and Set New Dark Matter Limits with Minimal Resources

by Robert Schreiber
Berlin, Germany (SPX) Apr 17, 2026
A group of then-undergraduate students from the University of Hamburg has built a small-scale cavity detector to search for axions - among the most promising candidates for dark matter - and set new experimental limits on their properties, in a study published in the Journal of Cosmology and Astroparticle Physics (JCAP).

The result was achieved with relatively limited resources, demonstrating that small-scale experiments can make a meaningful contribution to one of the most open challenges in modern physics.

The project was funded through a student research grant provided by the University of Hamburg via the Hub for Crossdisciplinary Learning, which supports independent research initiatives. The team also received support from the MADMAX dark matter experiment, a much larger and more complex undertaking that carries out a similar search. "We were kind of embedded in the research group of the MADMAX dark matter experiment," said Nabil Salama, one of the authors. "MADMAX carries out a similar experiment on a much larger and more complex scale, and we benefited from their expertise and support."

Additional support came from the Quantum Universe Cluster of Excellence, which provided access to key equipment including the magnet used in the experiment.

Axions are theorized to be present throughout the galaxy, which means any location is suitable for conducting a search. "The benefit of working with dark matter, or axions, is that we expect it to be present everywhere in our galaxy," said Agit Akgumus, first author of the study alongside Salama. "So essentially, no matter where you perform the experiment, you have some dark matter on your hand you can do experiments with."

The experimental setup centered on a resonant cavity made from highly conductive materials, along with necessary electronics, cabling, supports, and measurement instruments. "The detector we built is essentially the simplest version of a cavity detector for dark matter," said Salama. The team relied partly on existing infrastructure and equipment provided by the university and collaborating research groups, rather than building entirely from scratch.

After testing, calibrating, and operating the detector to collect data, the team found no signal attributable to axions. Rather than a failure, this constitutes a meaningful scientific result: it allows researchers to exclude the presence of axions with certain properties within the explored mass range, particularly those with stronger interactions with photons, thereby narrowing the parameter space for future searches.

"Our results are naturally more limited than those of larger experiments. Performance scales with resources and complexity. However, we have shown that it is possible to reduce these setups to a much smaller scale - even to projects developed almost independently by students - while still producing real scientific data," said Akgumus.

"The search for axions involves exploring a wide range of possible parameters," he added. "Our experiment covers only a small region, with limited sensitivity, but it still helps narrow down the possibilities. To actually find the particle, we need either much larger experiments or many different ones, each probing a specific region."

During peer review, a referee suggested that once the axion is discovered and its mass determined, experiments of this kind could become accessible enough for use in teaching laboratories. "We were told that setups like ours could one day become standard student lab experiments," said Salama. "In a way, we may have anticipated that future, showing that it is already possible to build and operate such an experiment on a small scale."

Research Report:A new Limit for Axion Dark Matter with SPACE

Related Links
MADMAX dark matter experiment
Sissa Medialab
Stellar Chemistry, The Universe And All Within It

Subscribe Free To Our Daily Newsletters
RELATED CONTENT
The following news reports may link to other Space Media Network websites.
STELLAR CHEMISTRY
Decaying Dark Matter May Have Seeded the Earliest Supermassive Black Holes
Los Angeles CA (SPX) Apr 16, 2026
A growing mystery in astronomy is the presence of gargantuan black holes - some weighing as much as a billion suns - existing less than a billion years after the Big Bang. According to standard theory, these black holes simply should not have had enough time to grow so large. New research from the University of California, Riverside now offers a compelling explanation: decaying dark matter may have altered the chemistry of early galaxies enough to allow some of them to collapse directly into black holes ... read more

STELLAR CHEMISTRY
Ocean Wave Mechanics Across the Solar System and Beyond

Jupiter size refined by new radio mapping

Polar weather on Jupiter and Saturn hints at the planets' interior details

Europa ice delamination may deliver nutrients to hidden ocean

STELLAR CHEMISTRY
STELLAR CHEMISTRY
Three-Body Exoplanet System TOI-201 Caught Changing Its Orbital Architecture in Real Time

Desert Worlds in Habitable Zones Unlikely to Support Life Without Sufficient Surface Water

Webb finds metal-poor atmosphere on giant world around red dwarf

Tough microbe study backs idea of life moving between planets

STELLAR CHEMISTRY
Solar storm supercharges Mars atmosphere and disrupts ESA orbiters

Fungi tested as space building blocks for moon and Mars

'Water bears' reveal potential for adapting, protecting Martian resources

Curiosity Blog, Sols 4798-4803: Back for More Science

STELLAR CHEMISTRY
Chickpeas grown in simulated moon soil reach harvest

Astrobotic and CMU advance distributed nav system for Moon missions

Astrobotic to build lunar wheel for Italian habitation module

Far side moon soil study points to stronger ground for future bases

STELLAR CHEMISTRY
Sun like stars keep equator faster than poles for life

Mauve satellite marks new step for commercial ultraviolet astronomy

Decaying Dark Matter May Have Seeded the Earliest Supermassive Black Holes

ALMA survey maps cold gas maze at Milky Way core

STELLAR CHEMISTRY
UK and Saudi partners design climate focused Earth observation mission

LizzieSat 3 hosts HEO USA non Earth imaging payload in orbit

ASII launches national geospatial digital twin for Australian agriculture

New axis grid links complex earth data in space and time

STELLAR CHEMISTRY
Ingredients of life discovered in Ryugu asteroid samples

Ryugu samples record early solar system magnetic fields

Webb observations confirm safe lunar pass for asteroid 2024 YR4

DART images show slow motion rock exchange between binary asteroids

Subscribe Free To Our Daily Newsletters




The content herein, unless otherwise known to be public domain, are Copyright 1995-2026 - Space Media Network. All websites are published in Australia and are solely subject to Australian law and governed by Fair Use principals for news reporting and research purposes. AFP, UPI and IANS news wire stories are copyright Agence France-Presse, United Press International and Indo-Asia News Service. ESA news reports are copyright European Space Agency. All NASA sourced material is public domain. Additional copyrights may apply in whole or part to other bona fide parties. All articles labeled "by Staff Writers" include reports supplied to Space Media Network by industry news wires, PR agencies, corporate press officers and the like. Such articles are individually curated and edited by Space Media Network staff on the basis of the report's information value to our industry and professional readership. Advertising does not imply endorsement, agreement or approval of any opinions, statements or information provided by Space Media Network on any Web page published or hosted by Space Media Network. General Data Protection Regulation (GDPR) Statement Our advertisers use various cookies and the like to deliver the best ad banner available at one time. All network advertising suppliers have GDPR policies (Legitimate Interest) that conform with EU regulations for data collection. By using our websites you consent to cookie based advertising. If you do not agree with this then you must stop using the websites from May 25, 2018. Privacy Statement. Additional information can be found here at About Us.