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Constraints on electron-scattering interpretation of XENON1T excess

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arxiv 2007.01663 v2 pith:MET7T6BH submitted 2020-07-03 hep-ph astro-ph.CO

classification hep-phastro-ph.CO
keywords constraintsexcessxenon1tdetectiondirectelectron-scatteringexperimentsinterpretation
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abstract

Recently, the XENON1T experiment has observed an excess in the electronic recoil data in the recoil energy range of $1$-$7$ keV. One of the most favored new physics interpretations is electron scattering with a boosted particle with a velocity of $\sim 0.1$ and a mass of $\gtrsim 0.1\,\mathrm{MeV}$. If such a particle has a strong interaction with electrons, it may affect the standard scenario of cosmology or be observed at low-threshold direct detection experiments. We study various constraints, mainly focusing on those from the big-bang nucleosynthesis, supernova cooling, and direct detection experiments. We discuss the implication of these constraints on electron-scattering interpretation of the XENON1T excess.

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  1. Supernova-Boosted Dark Matter at Large-Volume Neutrino Detectors

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    A sensitivity study shows large-volume neutrino detectors could discover supernova-boosted dark matter down to couplings of about 1e-22, with the Betelgeuse timing signal as a key multi-messenger signature.

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