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Dark Matter Direct Detection in Materials with Spin-Orbit Coupling

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arxiv 2202.11716 v1 pith:OND27Z2S submitted 2022-02-23 hep-ph cond-mat.mtrl-sci

classification hep-phcond-mat.mtrl-sci
keywords materialsbandcouplingdarkgapsmatterspin-orbitabsorption
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

Semiconductors with $\mathcal{O}(\text{meV})$ band gaps have been shown to be promising targets to search for sub-MeV mass dark matter (DM). In this paper we focus on a class of materials where such narrow band gaps arise naturally as a consequence of spin-orbit coupling (SOC). Specifically, we are interested in computing DM-electron scattering and absorption rates in these materials using state-of-the-art density functional theory (DFT) techniques. To do this, we extend the DM interaction rate calculation to include SOC effects which necessitates a generalization to spin-dependent wave functions. We apply our new formalism to calculate limits for several DM benchmark models using an example ZrTe$_{5}$ target and show that the inclusion of SOC can substantially alter projected constraints.

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  1. Dark matter pair absorption

    hep-ph 2025-07 conditional novelty 7.0 of 10

    Pair absorption of two dark matter particles in atomic transitions can probe electroweak-scale couplings of mu-eV-to-eV mass bosonic dark matter, and could bound the cosmic neutrino background overdensity near 10^9.

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