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Research PaperResearchia:202607.22017

Dark matter searches with a 13 meV threshold superconducting sensor array

Christopher Albert

Abstract

Many well-motivated dark matter models predict meV-scale energy deposits in interactions with terrestrial experiments, but this regime is challenging to probe due to a lack of mature single-quantum detectors. Here we report results from QUALIPHIDE (QUAntum LImited PHotons In the Dark Experiment), a cryogenic dark matter search using a $41$-pixel array of energy-resolving microwave kinetic inductance detectors with a $13$ meV threshold, simultaneously used to look for both conversion photons from...

Submitted: July 22, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

Many well-motivated dark matter models predict meV-scale energy deposits in interactions with terrestrial experiments, but this regime is challenging to probe due to a lack of mature single-quantum detectors. Here we report results from QUALIPHIDE (QUAntum LImited PHotons In the Dark Experiment), a cryogenic dark matter search using a 4141-pixel array of energy-resolving microwave kinetic inductance detectors with a 1313 meV threshold, simultaneously used to look for both conversion photons from THz wavelength hidden photon dark matter and phonons from particle-like light dark matter interactions. The experimental design, with on- and off-focus pixels for the hidden photon search, allows for a data-driven background model, giving the experiment discovery potential. A blind analysis of 2222 hours of data shows no significant excess, setting the strongest constraints on the hidden photon kinetic mixing parameter ฯ‡ฯ‡ over the mass range of 1313-9090 meV/c2c^2, reaching 1.5ร—10โˆ’121.5\times10^{-12} at 5050 meV/c2c^2. These data also yield among the first terrestrial limits on dark matter scattering off nuclei and electrons, down to 55 MeV/c2c^2 and 2020 keV/c2c^2, respectively. The low threshold also enables future study of the low-energy excess limiting cryogenic detectors and, as we project, will allow for a terahertz-scale QCD axion search with a magnetic field.


Source: arXiv:2607.19319v1 - http://arxiv.org/abs/2607.19319v1 PDF: https://arxiv.org/pdf/2607.19319v1 Original Link: http://arxiv.org/abs/2607.19319v1

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Date:
Jul 22, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
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