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Searching for Dark Photons with Existing Haloscope Data

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abstract

The dark (or hidden) photon is a massive U(1) gauge boson theorized as a dark force mediator and as a dark matter candidate. Dark photons can be detected with axion cavity haloscopes by probing for a power excess caused by the dark photon's kinetic mixing with Standard Model photons. Haloscope axion exclusion limits may therefore be converted into competitive dark photon parameter limits via the calculation of a corresponding dark photon to photon coupling factor. This calculation allows for an improvement in sensitivity of around four orders of magnitude relative to other dark photon exclusions and may be attained using existing data. We present how one converts haloscope axion search limits and a summary of relevant experimental parameters from published searches. In addition, we have included the code that can be used to generate our dark photon exclusion limits for the cases described in this paper. Finally, we present limits on the kinetic mixing coefficient between dark photons and the Standard Model photons based on existing haloscope axion searches.

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Sub-MHz Radio Background from Ultralight Dark Photon Dark Matter

hep-ph · 2025-01-02 · conditional · novelty 6.0

Dark inverse Compton scattering of cosmic-ray electrons and positrons on ultralight dark photon dark matter produces a sub-MHz radio background that, compared with IMP-6, RAE-2, and Parker Solar Probe data, constrains the kinetic mixing below about 2e-6 for masses below 2e-17 eV.

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  • Sub-MHz Radio Background from Ultralight Dark Photon Dark Matter hep-ph · 2025-01-02 · conditional · none · ref 19 · internal anchor

    Dark inverse Compton scattering of cosmic-ray electrons and positrons on ultralight dark photon dark matter produces a sub-MHz radio background that, compared with IMP-6, RAE-2, and Parker Solar Probe data, constrains the kinetic mixing below about 2e-6 for masses below 2e-17 eV.