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arXiv:2012.05834·v3·High Energy Physics — Phenomenology

Cosmic antihelium-3 nuclei sensitivity of the GAPS experiment

N. Saffold🇺🇸 · T. Aramaki🇺🇸 · R. Bird🇺🇸 · M. Boezio🇮🇹 · S. E. Boggs🇺🇸 · V. Bonvicini🇮🇹 · D. Campana🇮🇹 · W. W. Craig🇺🇸 · P. von Doetinchem🇺🇸 · E. Everson🇺🇸 · L. Fabris🇺🇸 · H. Fuke🇯🇵

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Abstract

The General Antiparticle Spectrometer (GAPS) is an Antarctic balloon experiment designed for low-energy (0.10.3 GeV/) cosmic antinuclei as signatures of dark matter annihilation or decay. GAPS is optimized to detect low-energy antideuterons, as well as to provide unprecedented sensitivity to low-energy antiprotons and antihelium nuclei. The novel GAPS antiparticle detection technique, based on the formation, decay, and annihilation of exotic atoms, provides greater identification power for these low-energy antinuclei than previous magnetic spectrometer experiments. This work reports the sensitivity of GAPS to detect antihelium-3 nuclei, based on full instrument simulation, event reconstruction, and realistic atmospheric influence simulations. The report of antihelium nuclei candidate events by AMS-02 has generated considerable interest in antihelium nuclei as probes of dark matter and other beyond the Standard Model theories. GAPS is in a unique position to detect or set upper limits on the cosmic antihelium nuclei flux in an energy range that is essentially free of astrophysical background. In three 35-day long-duration balloon flights, GAPS will be sensitive to an antihelium flux on the level of (95% confidence level) in the energy range of 0.110.3 GeV/, opening a new window on rare cosmic physics.

Comments: Accepted for publication at Astroparticle Physics, 13 pages, 5 figures

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