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Dark photon dark matter constraints at the Taiwan axion search experiment with haloscope

High Energy Physics - Experiment 2026-04-01 v3 High Energy Physics - Phenomenology

Abstract

The dark photon is a well motivated candidate for the dark matter which comprises most of the mass of our visible Universe, leading to worldwide experimental and observational efforts towards its discovery. A primary tool in this search is the cavity haloscope, which facilitates resonantly enhanced conversion to photons from both dark photons and axions. In this context, limits from axion search experiments are often directly converted into dark photon constraints, without re-analyzing the original data. However, this rescaling may not fully capture all of the relevant physics due to various reasons. By re-examining data taken by the Taiwan Axion Search Experiment with Haloscope (TASEH) experiment, we derive a world-leading constraint on the dark photon parameter space, excluding ϵ2×1014|\epsilon|\gtrsim2\times10^{-14} in the 19.4619.84μ19.46 - 19.84\,\mueV mass range, which exceeds the na{\"i}ve `rescaling limit' by roughly a factor of two. We emphasize that accounting for the scanning timing information is crucial for deriving limits for the polarized dark photon case. In the data, we also analyze a tentative signal excess with a local significance of 4.7σ\sigma (mX19.5μm_X \simeq 19.5\,\mueV) that persists in the absence of a magnetic field. While this excess mimics the behavior of a dark photon signal, it has been excluded by recent results from the HAYSTAC and ORGAN-Q experiments. This case study, nevertheless, highlights the risk of discarding valid dark photon signals when relying on axion-specific magnetic field vetoes.

Keywords

Cite

@article{arxiv.2507.00784,
  title  = {Dark photon dark matter constraints at the Taiwan axion search experiment with haloscope},
  author = {Yuan-Hann Chang and Cheng-Wei Chiang and Hien Thi Doan and Nick Houston and Jinmian Li and Tianjun Li and Lina Wu and Xin Zhang},
  journal= {arXiv preprint arXiv:2507.00784},
  year   = {2026}
}

Comments

13 pages, 7 figures. Accepted for publication in PRD