Nuclear recoil Migdal effect in liquid xenon dark matter experiments

The Migdal effect predicts that a nuclear recoil (NR) can be accompanied by detectable atomic ionization or excitation signals, even at the low energies expected from interactions of sub-GeV dark matter particles with atomic nuclei. Liquid xenon-based dark matter experiments have projected substantial sensitivity gains to light dark matter based on this effect, underscoring the importance of its direct characterization in xenon. In this Letter, we draw on our theoretical and experimental studies of NR Migdal interactions to discuss their predicted characteristics and corresponding observable signatures in liquid xenon detectors. We examine the challenges of directly observing Migdal signals using neutron-induced xenon recoils and outline possible measurement strategies and necessary background mitigation measures to allow a definitive confirmation of the Migdal effect in liquid xenon.

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Journal
Applied Physics Letters
Published
2026-09-28
DOI
https://doi.org/10.1063/5.0346148
Primary Topic
Dark Matter and Cosmic Phenomena
Type
article
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Nuclear recoil Migdal effect in liquid xenon dark matter experiments

Walter H. Lippincott, Rouven Essig, Brian G. Lenardo, Jingke Xu et al.
Applied Physics Letters
Dark Matter and Cosmic Phenomena
article

Nuclear recoil Migdal effect in liquid xenon dark matter experiments

Walter H. Lippincott, Rouven Essig, Brian G. Lenardo, Jingke Xu, Jeonghwa Kim, Duncan Adams
article en

Abstract

The Migdal effect predicts that a nuclear recoil (NR) can be accompanied by detectable atomic ionization or excitation signals, even at the low energies expected from interactions of sub-GeV dark matter particles with atomic nuclei. Liquid xenon-based dark matter experiments have projected substantial sensitivity gains to light dark matter based on this effect, underscoring the importance of its direct characterization in xenon. In this Letter, we draw on our theoretical and experimental studies of NR Migdal interactions to discuss their predicted characteristics and corresponding observable signatures in liquid xenon detectors. We examine the challenges of directly observing Migdal signals using neutron-induced xenon recoils and outline possible measurement strategies and necessary background mitigation measures to allow a definitive confirmation of the Migdal effect in liquid xenon.

Applied Physics LettersVol. 129(13)
Lawrence Livermore National Laboratory (US), University of California, Santa Barbara (US), SLAC National Accelerator Laboratory (US), Stony Brook University (US)
Climate action
Openalex Percentile: Top 53%
Dark Matter and Cosmic Phenomena
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Nuclear recoil Migdal effect in liquid xenon dark matter experiments — Walter H. Lippincott, Rouven Essig, et al. · Applied Physics Letters (2026) | TGRS Research Map | TGRS