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March 14, 2026Journal of High Energy Physics0 citationsOpen Access

Cosmic Axion Background detection using resonant cavity arrays

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SCS. ChungJDJeff A. Dror

Key Points

  • To develop a detection strategy for Cosmic Axion Background using resonant cavity arrays.
  • Propose multi-cavity array strategy for detection.
  • Compute two-point correlation function for electric fields in cavities.
  • Analyze various cavity geometries for signal enhancement.
  • Find that stacked, wide-base cavity arrays enhance axion signal.
  • Identify optimizations in cavity geometry could improve sensitivity for the Cosmic Axion Background.

Abstract

A bstract The axion is a well-motivated and generic extension of the Standard Model. If produced in the early universe, axions may still be relativistic today, forming a Cosmic Axion Background (C a B) potentially detectable in direct detection experiments. Although C a B is expected to be broadband, which makes it challenging to be detected, a high-quality-factor microwave cavity acts as a narrowband filter with response peaked at its resonant frequency. We propose a new strategy using multi-cavity arrays to distinguish signal from background noise by exploiting spatial correlations of the axion-induced electric field which are set by the cavity quality factor. We compute the two-point correlation function for electric fields in spatially separated cavities sourced by an isotropic C a B. Analyzing various cavity geometries, we find that stacked, wide-base cavity arrays offer coherent enhancement of the axion signal. We apply our formalism to prospective upgrades of the ADMX experiment, including configurations with four and eighteen coupled cavities. Although these arrays do not achieve a coherent enhancement, optimizing the geometry could potentially yield an O (1) O 1 improvement in the sensitivity to the C a B.

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Cite This Study

Chung et al. (2026) studied this question.

synapsesocial.com/papers/69b4ba1818185d8a398029a5https://doi.org/10.1007/jhep03(2026)123
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