Direct Detection of Fast-Moving Low-Mass Dark Matter

Fuente: arXiv
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Autori principali: Alhazmi, Haider, Kim, Doojin, Kong, Kyoungchul, Mohlabeng, Gopolang, Park, Jong-Chul, Shin, Seodong
Natura: Preprint
Pubblicazione: 2025
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author Alhazmi, Haider
Kim, Doojin
Kong, Kyoungchul
Mohlabeng, Gopolang
Park, Jong-Chul
Shin, Seodong
author_facet Alhazmi, Haider
Kim, Doojin
Kong, Kyoungchul
Mohlabeng, Gopolang
Park, Jong-Chul
Shin, Seodong
contents We examine the signals produced by dark matter interactions with electrons, which play a crucial role in direct detection experiments employing heavy target materials, particularly in many well-motivated sub-GeV dark matter scenarios. When the momentum transfer to target electrons is comparable to or exceeds their binding energy, atomic effects related to electron ionization become essential for accurately determining signal rates - especially in the case of fast-moving dark matter. In this paper, we revisit and extend the atomic ionization formalism, systematically comparing different approaches used to formulate the ionization form factor and identifying their respective domains of validity. As practical applications, we explore detection prospects in xenon target experiments. To illustrate our findings, we consider a specific scenario involving boosted dark matter, which often leads to high-momentum electron recoils. Our analysis demonstrates that the choice of formalism can significantly influence the interpretation of experimental data, depending on the regions of parameter space.
format Preprint
id arxiv_https___arxiv_org_abs_2503_13598
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Direct Detection of Fast-Moving Low-Mass Dark Matter
Alhazmi, Haider
Kim, Doojin
Kong, Kyoungchul
Mohlabeng, Gopolang
Park, Jong-Chul
Shin, Seodong
High Energy Physics - Phenomenology
We examine the signals produced by dark matter interactions with electrons, which play a crucial role in direct detection experiments employing heavy target materials, particularly in many well-motivated sub-GeV dark matter scenarios. When the momentum transfer to target electrons is comparable to or exceeds their binding energy, atomic effects related to electron ionization become essential for accurately determining signal rates - especially in the case of fast-moving dark matter. In this paper, we revisit and extend the atomic ionization formalism, systematically comparing different approaches used to formulate the ionization form factor and identifying their respective domains of validity. As practical applications, we explore detection prospects in xenon target experiments. To illustrate our findings, we consider a specific scenario involving boosted dark matter, which often leads to high-momentum electron recoils. Our analysis demonstrates that the choice of formalism can significantly influence the interpretation of experimental data, depending on the regions of parameter space.
title Direct Detection of Fast-Moving Low-Mass Dark Matter
topic High Energy Physics - Phenomenology
url https://arxiv.org/abs/2503.13598