A hybrid shell-model/quasiparticle-phonon calculation predicts that inelastic neutrino scattering off 203/205Tl is several times larger at high neutrino energies than earlier shell-model-only estimates, and can rival coherent scattering for diffuse supernova neutrinos.
The SABRE project and the SABRE PoP
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abstract
SABRE aims to directly measure the annual modulation of the dark matter interaction rate with NaI(Tl) crystals. A modulation compatible with the standard hypothesis in which our Galaxy is embedded in a dark matter halo has been measured by the DAMA experiment in the same target material. Other direct detection experiments, using different target materials, seem to exclude the interpretation of such modulation in the simplest scenario of WIMP-nucleon elastic scattering. The SABRE experiment aims to carry out an independent search with sufficient sensitivity to confirm or refute the DAMA claim. The SABRE concept and goal is to obtain a background rate of the order of 0.1 cpd/kg/keVee in the energy region of interest. This challenging goal is achievable by operating high-purity crystals inside a liquid scintillator veto for active background rejection. In addition, twin detectors will be located in the northern and southern hemispheres to identify possible contributions to the modulation from seasonal or site-related effects. The SABRE project includes an initial Proof-of-Principle phase at LNGS (Italy), to assess the radio-purity of the crystals and the efficiency of the liquid scintillator veto. This paper describes the general concept of SABRE and the expected sensitivity to WIMP annual modulation.
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Inelastic neutrino-nucleus scattering off $^{203/205}$Tl in terms of the nuclear recoil energy using a hybrid nuclear model
A hybrid shell-model/quasiparticle-phonon calculation predicts that inelastic neutrino scattering off 203/205Tl is several times larger at high neutrino energies than earlier shell-model-only estimates, and can rival coherent scattering for diffuse supernova neutrinos.