English

Discovering Dark Matter at the LHC through Its Nuclear Scattering in Far-Forward Emulsion and Liquid Argon Detectors

High Energy Physics - Phenomenology 2021-09-01 v2 High Energy Physics - Experiment

Abstract

The LHC may produce light, weakly-interacting particles that decay to dark matter, creating an intense and highly collimated beam of dark matter particles in the far-forward direction. We investigate the prospects for detecting this dark matter in two far-forward detectors proposed for a future Forward Physics Facility: FASERν\nu2, a 10-tonne emulsion detector, and FLArE, a 10- to 100-tonne LArTPC. We focus here on nuclear scattering, including elastic scattering, resonant pion production, and deep inelastic scattering, and devise cuts that efficiently remove the neutrino-induced background. In the invisibly-decaying dark photon scenario, DM-nuclear scattering probes new parameter space for dark matter masses 5 MeV mχ\lesssim m_{\chi} \lesssim 500 MeV. When combined with the DM-electron scattering studied previously, FASERν\nu2 and FLArE will be able to discover dark matter in a large swath of the cosmologically-favored parameter space with MeV mχ\lesssim m_{\chi} \lesssim GeV.

Keywords

Cite

@article{arxiv.2107.00666,
  title  = {Discovering Dark Matter at the LHC through Its Nuclear Scattering in Far-Forward Emulsion and Liquid Argon Detectors},
  author = {Brian Batell and Jonathan L. Feng and Ahmed Ismail and Felix Kling and Roshan Mammen Abraham and Sebastian Trojanowski},
  journal= {arXiv preprint arXiv:2107.00666},
  year   = {2021}
}

Comments

28 pages, 8 figures, 4 tables. Version published in PRD