arXiv:2602.23995·v1·High Energy Physics — Phenomenology
Probing the Dark Matter EFT with QUEST-DMC: Projected Sensitivities and Attenuation Ceilings
QUEST-DMC Collaboration: N. Darvishi🇬🇧 · S. Autti🇬🇧 · L. Bloomfield🇬🇧 · A. Casey🇬🇧 · N. Eng🇬🇧 · P. Franchini🇬🇧 · R. P. Haley🇬🇧 · P. J. Heikkinen🇬🇧 · A. Jennings🇯🇵 · A. Kemp🇬🇧 · E. Leason🇬🇧 · J. March-Russell🇬🇧
Abstract
This proceedings contribution summarises projected constraints from the QUEST-DMC concept, a surface-based direct-detection experiment using superfluid He operated below the millikelvin regime and instrumented with nanomechanical resonators read out by SQUIDs. The low recoil-energy threshold (down to sub-eV for the SQUID configuration) enables sensitivity to sub-GeV dark matter across a wide set of interaction structures beyond the canonical spin-independent and spin-dependent limits. We present projections in the non-relativistic Effective Field Theory (EFT) framework, scanning the standard set of fourteen Galilean-invariant operators and expressing reach in terms of effective dark matter-nucleon (or dark matter-neutron) cross sections. Because QUEST-DMC operates at the surface, we also account for suppression of the incident flux due to scattering in the atmosphere and Earth, which produces an interaction-dependent sensitivity ceiling at large couplings. Finally, we outline how the non-relativistic results map onto representative relativistic EFT dark matter-nucleon bilinears, enabling a compact interpretation of the projected reach in terms of UV-motivated coupling structures.
Comments: Proceedings contributions to Corfu 2025, 12 pages, 3 figs, 1 table