Search for a solar-bound axion halo using the Global Network of Optical Magnetometers for Exotic physics searches

in: arXiv (2025)
Wilson, Tatum; Jackson Kimball, Derek F.; Afach, Samer; Bi, Jiexiao; Buchler, Ben C.; Budker, Dmitry; Cervantes, Kaleb; Eby, Joshua; Figueroa, Nataniel L.; Folman, Ron; Gao, Jiawei; Gavilan-Martin, Daniel; Givon, Menachem; Grujic, Zoran; Guo, Hong; Hamilton, Paul S.; Hedges, Morgan; Huang, Zhejun; Kim, Dongok; Kim, Younggeun; Khamis, Sami; Klinger, Emmanuel; Kryemadhi, Abaz; Kukowski, Nina; Li, Jianjun; Lukasiewicz, Grzegorz; Masia-Roig, Hector; Padniuk, Mikhail; Palm, Christopher A.; Paranjape, Chaitanya; Park, Sun Yool; Peng, Xiang; Perez, Gilad; Preston, Rayshaun; Pustelny, Szymon; Ratzinger, Wolfram; Rosenzweig, Yossi; Ruimi, Ophir M.; Saputo, Amy; Scholtes, Theo; Segura, Perrin C.; Semertzidis, Yannis; Shin, Yun Chang; Stalnaker, Jason E.; Sulai, Ibrahim; Tandon, Dhruv; Vu, Kenneth; Wickenbrock, Arne; Wu, Teng; Yang, Yucheng; Zhao, Yixin
We report on a search for a gravitationally bound solar axion halo using data from the Global Network of Optical Magnetometers for Exotic physics searches (GNOME), a worldwide array of magnetically shielded atomic magnetometers with sensitivity to exotic spin couplings. Motivated by recent theoretical work suggesting that self-interacting ultralight axions can be captured by the Sun's gravitational field and thermalize into the ground state, we develop a signal model for the pseudo-magnetic fields generated by axion-proton gradient couplings in such a halo. The analysis focuses on the fifth GNOME Science Run (69 days, 12 stations), employing a cross-correlation pipeline with time-shifted daily modulation templates to search for the global, direction-dependent, monochromatic signal expected from a solar axion halo. No statistically significant candidate signals are observed. We set 95% confidence-level upper limits on the amplitude of the axion-induced pseudo-magnetic field over the frequency range 0.05 Hz to 20 Hz, translating to constraints on the linear and quadratic axion-proton couplings for halo densities predicted by gravitational capture models and for the maximum overdensities allowed by planetary ephemerides. In the quadratic coupling case, our limits surpass existing astrophysical bounds by over two orders of magnitude across much of the accessible parameter space.

Third party cookies & scripts

This site uses cookies. For optimal performance, smooth social media and promotional use, it is recommended that you agree to third party cookies and scripts. This may involve sharing information about your use of the third-party social media, advertising and analytics website.
For more information, see privacy policy and imprint.
Which cookies & scripts and the associated processing of your personal data do you agree with?

You can change your preferences anytime by visiting privacy policy.