Enhanced detectability of axion’s electromagnetic response with a RF-excited magnetic field in cavity

A bstract Haloscope is one of the typical installations to detect the electromagnetic responses (EMRs) of axion field in radio-frequency (RF) and microwave bands. Given that the detectable signals of the usual Haloscope-type detectors (HTDs), biased only by high stationary magnetic fields, are just the second axion-photon energy and thus are very weak, here we propose a feasible approach to significantly improve their sensitivity by additionally applying a transverse RF- or microwave modulated magnetic field to excite the cavity’s magnetic resonant mode to produce the first-order axion-photon energy response signals. Accordingly, it can be argued that the achievable detection sensitivity of the upgrading HTD (i.e., UHTD) could be enhanced by 0 . 3 ~ 1 orders of magnitude, compared with that achieved by the existing HTDs without the transverse RF-excited magnetic field. The feasibility of the proposed UHTD is also discussed.

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Publication Details

Journal
Journal of High Energy Physics
Published
2026-09-09
DOI
https://doi.org/10.1007/jhep09(2026)118
Primary Topic
Dark Matter and Cosmic Phenomena
Type
article
Field-Weighted Citation Impact
0.00

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article

Enhanced detectability of axion’s electromagnetic response with a RF-excited magnetic field in cavity

Qing-Quan Jiang, X. N. Feng, Suirong He, Loujun Gao et al.
Journal of High Energy Physics
Dark Matter and Cosmic Phenomena
article

Enhanced detectability of axion’s electromagnetic response with a RF-excited magnetic field in cavity

Qing-Quan Jiang, X. N. Feng, Suirong He, Loujun Gao, L. F. Wei, H. Q. Zheng, Lingbo Zhao
article en

Abstract

A bstract Haloscope is one of the typical installations to detect the electromagnetic responses (EMRs) of axion field in radio-frequency (RF) and microwave bands. Given that the detectable signals of the usual Haloscope-type detectors (HTDs), biased only by high stationary magnetic fields, are just the second axion-photon energy and thus are very weak, here we propose a feasible approach to significantly improve their sensitivity by additionally applying a transverse RF- or microwave modulated magnetic field to excite the cavity’s magnetic resonant mode to produce the first-order axion-photon energy response signals. Accordingly, it can be argued that the achievable detection sensitivity of the upgrading HTD (i.e., UHTD) could be enhanced by 0 . 3 ~ 1 orders of magnitude, compared with that achieved by the existing HTDs without the transverse RF-excited magnetic field. The feasibility of the proposed UHTD is also discussed.

Journal of High Energy PhysicsVol. 2026(9)
China West Normal University (CN), Donghua University (CN), Southwest Jiaotong University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 100%
Dark Matter and Cosmic Phenomena
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Enhanced detectability of axion’s electromagnetic response with a RF-excited magnetic field in cavity — Qing-Quan Jiang, X. N. Feng, et al. · Journal of High Energy Physics (2026) | TGRS Research Map | TGRS