Nuclear recoil response of liquid xenon and its impact on solar 8B neutrino and dark matter searches
arXiv:2304.06142 · doi:10.1103/PhysRevD.108.022007
Abstract
Knowledge of the ionization and scintillation responses of liquid xenon (LXe) to nuclear recoils is crucial for LXe-based dark matter experiments. Current calibrations carry large uncertainties in the low-energy region below keV where signals from dark matter particles of 10 GeV/c masses are expected. The coherent elastic neutrino-nucleus scattering (CENS) by solar B neutrinos also results in a continuum of nuclear recoil events below 3.0 keV (99\% of events), which further complicates low-mass dark matter searches in LXe experiments. In this paper, we describe a method to quantify the uncertainties of low-energy LXe responses using published calibration data, followed by case studies to evaluate the impact of yield uncertainties on B searches and low-mass dark matter sensitivity in a typical ton-scale LXe experiment. We conclude that naively omitting yield uncertainties leads to overly optimistic limits by factor for a 6 GeV/c WIMP mass. Future nuclear recoil light yield calibrations could allow experiments to recover this sensitivity and also improve the accuracy of solar B flux measurements.
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