Dark matter searches with a 13 meV threshold superconducting sensor array
Christopher Albert, Lanqing Yuan, Jacob Harris, Ritoban Basu Thakur, Andrew Bear, Karl K. Berggren, Christopher Cappiello, Christopher Curwen, Peter Day, Byeong H. Eom, Arjun Ghosh, William Ho, Nikita Klimovich, Henry G. LeDuc, Karthik Ramanathan, Alejandro Simon
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 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 22 hours of data shows no significant excess, setting the strongest constraints on the hidden photon kinetic mixing parameter χ over the mass range of 13-90 meV/c2, reaching 1.5×10-12 at 50 meV/c2. These data also yield among the first terrestrial limits on dark matter scattering off nuclei and electrons, down to 5 MeV/c2 and 20 keV/c2, 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.
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