Dark matter search with a resonantly-coupled hybrid spin system
Поиск темной материи с использованием гибридной спиновой системы с резонансной связью
2025-04-08
SCID: 54.1/588zrhy3
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21Ne nuclear spinaxion dark matterbroadband dark matter searchhybrid spin systemself-compensation regime
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Abstract (AI)
Recent advances in tabletop quantum sensor technology have enabled searches for nongravitational interactions of dark matter (DM). Traditional axion DM experiments rely on sharp resonance, resulting in extensive scanning time to cover a wide mass range. In this work, we present a broadband approach in an alkali- 21Ne spin system. We identify two distinct hybrid spin-coupled regimes: a self-compensation regime at low frequencies and a hybrid spin resonance regime at higher frequencies. By utilizing these two distinct regimes, we significantly enhance the bandwidth of 21Ne nuclear spin compared to conventional nuclear magnetic resonance, while maintaining competitive sensitivity. We present a comprehensive broadband search for axion-like DM, covering 5 orders of magnitude of Compton frequencies range within[10-2,103] Hz. We set new constraints on the axion DM interactions with neutrons and protons, accounting for the effects of DM stochasticity. For the axion-neutron coupling, our results reach a low value of|gann|⩽3×10-10in the frequency range[2×10-2,4] Hz surpassing astrophysical limits and providing the strongest laboratory constraints in the[10,100] Hz range. For the axion-proton coupling, we offer the best terrestrial constraints for the frequency ranges[2×10-2,5] Hz and[16,7×102] Hz.
Key Findings
1
A broadband alkali–21Ne hybrid spin system enables dark-matter searches beyond the narrow resonance strategy of conventional axion experiments.
2
For axion–neutron coupling, the study reaches |g_ann| ≤ 3×10^-10 over [2×10^-2, 4] Hz, surpassing astrophysical limits and providing the strongest laboratory constraints in [10, 100] Hz.
3
The experiment conducts a broadband axion-like dark-matter search across five orders of magnitude in Compton frequency, spanning [10^-2, 10^3] Hz.
4
The results establish the best terrestrial constraints on axion–proton coupling in [2×10^-2, 5] Hz and [16, 7×10^2] Hz, accounting for dark-matter stochasticity.
5
The system exhibits two frequency regimes—low-frequency self-compensation and higher-frequency hybrid spin resonance—that substantially broaden 21Ne nuclear-spin bandwidth while retaining competitive sensitivity.
Research Object
alkali-21Ne hybrid spin system used for broadband axion-like dark matter detection
Research Subject
broadband spin response and sensitivity to axion-like dark matter interactions with neutrons and protons across the 10^-2–10^3 Hz Compton-frequency range
Publication Details
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2025-04-08
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