Dark Matter implications of DAMA/LIBRA-phase2 results
Abstract
Recently, the DAMA/LIBRA collaboration released updated results from their search for the annual modulation signal from Dark Matter (DM) scattering in the detector. Besides approximately doubling the exposure of the DAMA/LIBRA data set, the updated photomultiplier tubes of the experiment allow a lower recoil energy threshold of 1\,keV electron equivalent compared to the previous threshold of 2 keV electron equivalent. We study the compatibility of the observed modulation signal with DM scattering. Due to a conspiracy of multiple effects, the new data at low recoil energies is very powerful for testing the DM hypothesis. We find that canonical (isospin conserving) spin-independent DM-nucleon interactions are no longer a good fit to the observed modulation signal in the standard halo model. The canonical spin-independent case is disfavored by the new data, with best fit points of a DM mass of GeV, disfavored by , or a mass of GeV, disfavored by . Allowing for isospin violating spin independent interactions, we find a region with a good fit to the data with suppressed effective couplings to iodine for DM masses of GeV. We also consider spin-dependent DM-nucleon interactions, which yield good fits for similar DM masses of GeV or GeV
Cite
@article{arxiv.1804.01231,
title = {Dark Matter implications of DAMA/LIBRA-phase2 results},
author = {Sebastian Baum and Katherine Freese and Chris Kelso},
journal= {arXiv preprint arXiv:1804.01231},
year = {2019}
}
Comments
8 pages, 3 figures. v2: 10 pages, 5 figures. Updated to published DAMA/LIBRA-phase2 data, added results for spin-dependent WIMP-nucleon scattering, and additional references. v3: matches published version