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Deepest sensitivity to wavelike dark photon dark matter with superconducting radio frequency cavities

High Energy Physics - Experiment 2024-09-10 v5 Instrumentation and Methods for Astrophysics High Energy Physics - Phenomenology

Abstract

Wavelike, bosonic dark matter candidates like axions and dark photons can be detected using microwave cavities known as haloscopes. Traditionally, haloscopes consist of tunable copper cavities operating in the TM010_{010} mode, but ohmic losses have limited their performance. In contrast, superconducting radio frequency (SRF) cavities can achieve quality factors of 1010\sim 10^{10}, perhaps five orders of magnitude better than copper cavities, leading to more sensitive dark matter detectors. In this paper, we first derive that the scan rate of a haloscope experiment is proportional to the loaded quality factor QLQ_L, even if the cavity bandwidth is much narrower than the dark matter halo line shape. We then present a proof-of-concept search for dark photon dark matter using a nontunable ultrahigh quality SRF cavity. We exclude dark photon dark matter with kinetic mixing strengths of χ>1.5×1016\chi > 1.5\times 10^{-16} for a dark photon mass of mA=5.35μm_{A^{\prime}} = 5.35\mueV, achieving the deepest exclusion to wavelike dark photons by almost an order of magnitude.

Keywords

Cite

@article{arxiv.2208.03183,
  title  = {Deepest sensitivity to wavelike dark photon dark matter with superconducting radio frequency cavities},
  author = {Raphael Cervantes and Jose Aumentado and Caterina Braggio and Bianca Giaccone and Daniil Frolov and Anna Grassellino and Roni Harnik and Florent Lecocq and Oleksandr Melnychuk and Roman Pilipenko and Sam Posen and Alexander Romanenko},
  journal= {arXiv preprint arXiv:2208.03183},
  year   = {2024}
}

Comments

11 pages, 12 figures