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arXiv:2503.04175·v2·High Energy Physics — Phenomenology

Searching for Dark Photon Tridents Through Primordial Black Hole Signatures

Kingman Cheung🇹🇼 · C.J. Ouseph🇰🇷 · Po-Yan Tseng🇹🇼 · Sin Kyu Kang🇰🇷

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Abstract

The detection of gamma-ray signals from primordial black holes (PBHs) could provide compelling evidence for their role as a dark matter candidate, particularly through the observation of their Hawking radiation. Future gamma-ray observatories, such as e-ASTROGAM, and the next-generation telescopes, are poised to explore this possibility by measuring both Standard Model (SM) and beyond-the-SM particle emissions. A particularly promising avenue involves production of dark photons by PBHs, which is a hypothetical particle that decays into photons. In this work, we investigate the trident decay of dark photons with mass MeV focusing on their primary emission from asteroid-mass PBHs. We assume that the dark photons produced via Hawking radiation decay into photons well before reaching Earth, thereby enhancing the detectable gamma-ray flux. The energy spectrum of the photons decaying from the dark photons is distinct from that of direct Hawking-radiated photons due to higher degree of freedom, leading to observable modifications in the gamma-ray signal. Using the asteroid-mass PBHs as a case study, we demonstrate that future gamma-ray missions could detect dark-photon signatures and distinguish them from conventional Hawking radiation. This approach enables the exploration of previously inaccessible parameter spaces in dark photon mass MeV and their coupling to photons, offering a viable avenue to uncover the properties of dark sectors and the nature of asteroid-mass PBHs.

Comments: EPJC Accepted Version, 26 pages, 3 figures, 1 Table

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