Constraints on Axion Dark Matter by Spin-Dependent Macroscopic Force

Fuente: arXiv
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Main Authors: Yang, Dongyi, Sun, Chenxi, Zhang, Jianwei
Format: Preprint
Published: 2025
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author Yang, Dongyi
Sun, Chenxi
Zhang, Jianwei
author_facet Yang, Dongyi
Sun, Chenxi
Zhang, Jianwei
contents Axion-like particles (ALPs) are hypothetical particles that serve as promising candidates for cold dark matter. Portals like inelastic axion scattering and axion propagated force have been employed to search for the upper limit of the ALPs' coupling with standard model particles. Other methods, like the axion-fermion interaction in the CASPEr experiment, integrate the dark matter motion into the measurement. We suggest a new method for detecting dark matter axions based on axionelectron elastic scattering. In the pseudoscalar axion model, this interaction can be seen as an effective magnetic field, so high-sensitivity atomic magnetometers can be utilized to measure this interaction. The scattering cross section of this process is significantly amplified by the high number density and occupation number of axion dark matter. The upper limit of the electron-axion coupling coefficient obtained from this process can reach two orders of magnitude higher than previous results at low axion mass, and will exceed the astrophysics limits by using a developing magnetometer. This scattering process also provides an efficient way to detect local structures of dark matter.
format Preprint
id arxiv_https___arxiv_org_abs_2507_17148
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Constraints on Axion Dark Matter by Spin-Dependent Macroscopic Force
Yang, Dongyi
Sun, Chenxi
Zhang, Jianwei
High Energy Physics - Phenomenology
Axion-like particles (ALPs) are hypothetical particles that serve as promising candidates for cold dark matter. Portals like inelastic axion scattering and axion propagated force have been employed to search for the upper limit of the ALPs' coupling with standard model particles. Other methods, like the axion-fermion interaction in the CASPEr experiment, integrate the dark matter motion into the measurement. We suggest a new method for detecting dark matter axions based on axionelectron elastic scattering. In the pseudoscalar axion model, this interaction can be seen as an effective magnetic field, so high-sensitivity atomic magnetometers can be utilized to measure this interaction. The scattering cross section of this process is significantly amplified by the high number density and occupation number of axion dark matter. The upper limit of the electron-axion coupling coefficient obtained from this process can reach two orders of magnitude higher than previous results at low axion mass, and will exceed the astrophysics limits by using a developing magnetometer. This scattering process also provides an efficient way to detect local structures of dark matter.
title Constraints on Axion Dark Matter by Spin-Dependent Macroscopic Force
topic High Energy Physics - Phenomenology
url https://arxiv.org/abs/2507.17148