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Extending the Discovery Potential for Inelastic-Dipole Dark Matter with FASER

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arxiv 2301.05252 v2 pith:MOUT4L4Z submitted 2023-01-12 hep-ph hep-ex

classification hep-phhep-ex
keywords faserparticlesexperimentsinteractionsneutralparameterspacecandidate
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Neutral particles are notoriously difficult to observe through electromagnetic interactions. As a result, they naturally elude detection in most collider detectors. In this paper, we point out that neutral particles that interact through a dipole interaction can nevertheless be detected in far-forward detectors designed to search for long-lived particles (LLPs). In contrast to previous analyses that focused on neutral particles with elastic interactions, we consider inelastic interactions. This naturally leads to LLPs, and we demonstrate that FASER (and future experiments at the Forward Physics Facility) will be able to probe substantial regions of the associated parameter space. In particular, we find that FASER is capable of probing the region of parameter space wherein thermal freeze-out gives rise to an $\mathcal{O}$(GeV) dark-matter candidate with the appropriate relic abundance, as well as regions of parameter space that are difficult to probe at fixed-target experiments. FASER and its successor experiments may therefore play a critical role in the discovery of such a dark-matter candidate.

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  1. New Thermal-Relic Targets for sub-GeV Dark Matter Direct Detection

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    For sub-GeV dark matter coupled to anomaly-free U(1) mediators, thermal freeze-out predicts electron-recoil cross sections that are already excluded for electrophilic mediators but still viable and discoverable for el...

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