Diphoton Signals of Muon-philic Scalars at DarkQuest

Fuente: arXiv
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Main Authors: Blinov, Nikita, Gori, Stefania, Hamer, Nick
Format: Preprint
Published: 2024
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author Blinov, Nikita
Gori, Stefania
Hamer, Nick
author_facet Blinov, Nikita
Gori, Stefania
Hamer, Nick
contents We analyze the unique capability of the DarkQuest proton beam-dump experiment at Fermilab to discover new light resonances decaying into photons. As an example model, we focus on muon-philic scalar particles that decay to photons. This is one of the few minimal models that can address the $(g-2)_μ$ anomaly at low mass. These scalars can be copiously produced by meson decays and muon bremsstrahlung. We point out that thanks to DarkQuest's compact geometry, muons can propagate through the dump and efficiently produce dark scalars near the end of the dump. This mechanism enables DarkQuest to be sensitive to both long-lived and prompt scalars. At the same time, di-photon signatures are generically not background free, and we discuss in detail the different sources of background and strategies to mitigate them. We find that the backgrounds can be sufficiently reduced for DarkQuest to test currently-viable $(g-2)_μ$ parameter space.
format Preprint
id arxiv_https___arxiv_org_abs_2405_17651
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Diphoton Signals of Muon-philic Scalars at DarkQuest
Blinov, Nikita
Gori, Stefania
Hamer, Nick
High Energy Physics - Phenomenology
High Energy Physics - Experiment
We analyze the unique capability of the DarkQuest proton beam-dump experiment at Fermilab to discover new light resonances decaying into photons. As an example model, we focus on muon-philic scalar particles that decay to photons. This is one of the few minimal models that can address the $(g-2)_μ$ anomaly at low mass. These scalars can be copiously produced by meson decays and muon bremsstrahlung. We point out that thanks to DarkQuest's compact geometry, muons can propagate through the dump and efficiently produce dark scalars near the end of the dump. This mechanism enables DarkQuest to be sensitive to both long-lived and prompt scalars. At the same time, di-photon signatures are generically not background free, and we discuss in detail the different sources of background and strategies to mitigate them. We find that the backgrounds can be sufficiently reduced for DarkQuest to test currently-viable $(g-2)_μ$ parameter space.
title Diphoton Signals of Muon-philic Scalars at DarkQuest
topic High Energy Physics - Phenomenology
High Energy Physics - Experiment
url https://arxiv.org/abs/2405.17651