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Atmospheric neutrinos in next-generation xenon and argon dark matter experiments

Jayden L. Newstead, R. F. Lang, Louis E. Strigari

2021Physical review. D/Physical review. D.20 citationsDOIOpen Access PDF

Abstract

We study the sensitivity of future xenon- and argon-based dark matter and neutrino detection experiments to low-energy atmospheric neutrinos. Not accounting for experimental backgrounds, the primary obstacle for identifying nuclear recoils induced by atmospheric neutrinos in xenon is the tail of the electron recoil distribution due to $pp$ solar neutrinos. We use the NEST code to model the solar and atmospheric neutrino signals in a xenon detector and find that an exposure of 700 tonne-years will produce a $5\ensuremath{\sigma}$ detection of atmospheric neutrinos. We explore the effect of different detector properties and find that a sufficiently long electron lifetime is essential to the success of such a measurement.

Topics & Concepts

XenonDark matterNeutrinoArgonPhysicsAstrophysicsAstronomyNuclear physicsAtomic physicsDark Matter and Cosmic PhenomenaParticle physics theoretical and experimental studiesNeutrino Physics Research
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