A systematic investigation on dark matter-electron scattering in effective field theories
Jin-Han Liang, Yi Liao, Xiao-Dong Ma, Hao-Lin Wang

TL;DR
This paper systematically investigates dark matter-electron interactions using effective field theories, deriving scattering rates, and applying experimental data to set new constraints on sub-GeV dark matter models.
Contribution
It constructs both non-relativistic and relativistic EFT operators for various dark matter spins and matches them to atomic responses, providing a comprehensive framework for direct detection analysis.
Findings
Derived compact decomposition of the scattering matrix element.
Set new bounds on sub-GeV dark matter using recent experimental data.
PandaX-4T data provides the most stringent constraints for DM > 20 MeV.
Abstract
In this paper, we systematically investigate the general dark matter-electron interactions within the framework of effective field theories (EFT). We consider both the non-relativistic (NR) EFT and the relativistic EFT descriptions of the interactions with the spin of dark matter (DM) up to one, i.e., the scalar (), fermion (), and vector DM scenarios. We first collect the leading-order NR EFT operators describing the DM-electron interactions, and construct especially the NR operators for the vector DM case. Next, we consider all possible leading-order relativistic EFT operators including those with a photon field and perform the NR reduction to match them onto the NR EFT. Then we rederive the DM-bound-electron scattering rate within the NR EFT framework and find that the matrix element squared, which is the key input that encodes the DM and atomic information, can be…
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Taxonomy
TopicsDark Matter and Cosmic Phenomena · Atomic and Subatomic Physics Research · Physics of Superconductivity and Magnetism
