arXiv:2511.08064·v2·High Energy Physics — Phenomenology
Scalar-Magnetometer Search for Ultralight Dark Photon Dark Matter with a Single-Site, Two-Sensor Array: A 6-Channel DTFT Likelihood Analysis with Scalar Optically Pumped Magnetometers
Peisen Zhao🇩🇪 · Ole Behrens🇩🇪 · Maja Benning🇩🇪 · Peter Fierlinger🇩🇪 · Xuefen Han🇩🇪 · Maximilian Huber🇩🇪 · Florian Kuchler🇩🇪 · Yevgeny V. Stadnik🇦🇺 · Philipp Wunderl🇩🇪
Abstract
We report on a laboratory search for ultralight dark photon dark matter using a single-site, two-sensor scalar magnetometer array. The experiment employs two scalar optically pumped magnetometers (OPMs) operated in a differential configuration to suppress common-mode noise and enhance sensitivity to spatially coherent dark photon fields. We analyze 10.5 hours of continuous data with a six-channel complex data vector evaluated at the three physical frequencies of the expected dark photon signal triplet. Assuming Gaussian noise, we develop a likelihood framework to set robust, frequency-resolved upper limits on the kinetic-mixing parameter , which governs the coupling between Standard Model photons and dark photons. Within the mass range , we obtain the most stringent direct laboratory limits to date on , complementing existing astrophysical bounds including those inferred from observations of the Leo-T dwarf galaxy.
Comments: 22 pages, 6 figures. Submitted to Physical Review D