Dark Matter Detection Using Phonon Sensing in Amorphous Materials

Fuente: arXiv
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Main Authors: Bloch, Itay M., Knapen, Simon, Li, Xinran, Madden, Amalia, Marocco, Giacomo
Format: Preprint
Published: 2026
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_version_ 1866912979158564864
author Bloch, Itay M.
Knapen, Simon
Li, Xinran
Madden, Amalia
Marocco, Giacomo
author_facet Bloch, Itay M.
Knapen, Simon
Li, Xinran
Madden, Amalia
Marocco, Giacomo
contents We present a concept for a tabletop-scale detector with an amorphous target designed to search for dark matter absorption into phonon excitations. In crystalline materials, absorption occurs only at narrow resonances where the dark matter mass matches a zero momentum optical phonon mode, whereas amorphous targets provide a broadband response that can substantially enhance the absorption rate away from these resonances. The predicted backgrounds arise from the relaxation of disorder-induced metastable defects in the amorphous target, as well as from low-energy noise intrinsic to superconducting phonon sensors. A prototype detector with a target mass of only a few $μ$g could provide broadband sensitivity to dark photon absorption across the 50 meV-200 meV mass range, probing up to two orders of magnitude beyond existing constraints.
format Preprint
id arxiv_https___arxiv_org_abs_2603_22390
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Dark Matter Detection Using Phonon Sensing in Amorphous Materials
Bloch, Itay M.
Knapen, Simon
Li, Xinran
Madden, Amalia
Marocco, Giacomo
High Energy Physics - Phenomenology
Instrumentation and Detectors
We present a concept for a tabletop-scale detector with an amorphous target designed to search for dark matter absorption into phonon excitations. In crystalline materials, absorption occurs only at narrow resonances where the dark matter mass matches a zero momentum optical phonon mode, whereas amorphous targets provide a broadband response that can substantially enhance the absorption rate away from these resonances. The predicted backgrounds arise from the relaxation of disorder-induced metastable defects in the amorphous target, as well as from low-energy noise intrinsic to superconducting phonon sensors. A prototype detector with a target mass of only a few $μ$g could provide broadband sensitivity to dark photon absorption across the 50 meV-200 meV mass range, probing up to two orders of magnitude beyond existing constraints.
title Dark Matter Detection Using Phonon Sensing in Amorphous Materials
topic High Energy Physics - Phenomenology
Instrumentation and Detectors
url https://arxiv.org/abs/2603.22390