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arXiv · 2607.06005

Anisotropic electron scattering and Migdal effect in semiconductor detectors

Abstract

Cryogenic semiconductor detectors are widely used in dark matter direct detection. Electronic excitations in these materials can be caused either by direct dark matter electron scattering events, or indirectly via dark matter nuclear scattering events. For nuclear scattering of light dark matter, the event rate is enhanced due to an inelastic process known as the Migdal effect. Both the electron recoils and the Migdal effect in semiconductors depend on the dielectric function of the target material via the so-called energy loss function (ELF). In the standard approach found in the literature, the ELF is approximated as isotropic to simplify the calculation of the event rate. We introduce a practical method for computing the event rate for a general anisotropic ELF. We find that the daily modulation of the Migdal rate arises solely due to the quadrupole component of the ELF, whereas in electron scattering all spherical harmonic components affect the rate. We apply the formalism to study the daily modulation in silicon and gallium arsenide detectors.

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Aula Al-Adulrazzaq, Paolo Settembri, Sebastian Sassi, Federico Giannessi, Gianni Profeta, Matti Heikinheimo, Kimmo Tuominen. 2026-07-07. Anisotropic electron scattering and Migdal effect in semiconductor detectors. https://arxiv.org/abs/2607.06005

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