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arXiv:2412.09575·v1·High Energy Physics — Phenomenology

Limits on dark matter, ultralight scalars, and cosmic neutrinos with gyroscope spin and precision clocks

Sara Rufrano Aliberti🇮🇹 · Gaetano Lambiase🇮🇹 · Tanmay Kumar Poddar🇮🇹

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Abstract

Dark matter (DM) within the solar system induces deviations in the geodetic drift of gyroscope spin due to its gravitational interaction. Assuming a constant DM density as a minimal scenario, we constrain DM overdensity within the Gravity Probe B (GP-B) orbit and project limits for Earth's and Neptune's orbits around the Sun. The presence of electrons in gravitating sources and test objects introduces a scalar-mediated Yukawa potential, which can be probed using terrestrial and space--based precision clocks. We derive projected DM overdensity limits from Sagnac time measurements using onboard satellite clocks, highlighting their dependence on the source mass and orbital radius. The strongest limit, , is achieved at Neptune's orbit (), exceeding existing constraints. Correspondingly, the cosmic neutrino overdensity is bounded as , surpassing results from KATRIN and cosmic ray studies. The best limit on electrophilic scalar coupling is for scalar mass competitive with existing fifth-force bounds. These precision measurements offer a robust framework for testing gravity at solar system scales and probing DM in scenarios inaccessible to direct detection experiments.

Comments: 39 pages (including appendices), 03 captioned figures, 05 tables, comments are welcome

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