English

Gravity Probe-DM: The Gravitational Laboratory for Dark Matter

High Energy Physics - Phenomenology 2026-07-30 v1

Abstract

Dark matter is inferred gravitationally across the Universe but has not been detected within the Solar System. The Sun inevitably focuses incident unbound dark matter into an irreducible downstream wake. Its structure encodes the incoming density and velocity distribution and, for wave dark matter, the de Broglie scale. We propose Gravity Probe-DM, a heliocentric search using precision ranging between spacecrafts. The exact two-spacecraft observable is the differential wake acceleration; for a short baseline, it becomes the wake tidal tensor projected along the baseline. For a 2.5×106km2.5\times10^6\,\mathrm{km} baseline crossing a 0.1AU0.1\,\mathrm{AU} coherent width at 30kms130\,\mathrm{km\,s^{-1}}, a one-percent excess gives a raw uniform-core range scale of 0.63pm0.63\,\mathrm{pm} over 5.77d5.77\,\mathrm d. While the projected tide remains coherent over an interval TT, the free response grows as T2T^2, reaching 2.5nm2.5\,\mathrm{nm} over one year. An illustrative low-lag dark-disk component carrying 20%20\% of the reference local density and reaching a 30%30\% focused contrast gives a one-year scale of about 15nm15\,\mathrm{nm}. These pre-fit response scales show that trajectory design can move the signal from sub-picometre to nanometre scales. A detection would provide a purely gravitational map of local dark matter and probe the flow that produced it, including particle versus wave focusing. The Sun supplies the lens, spacecraft sample the wake, and precision ranging reads out its gravitational imprint.

Keywords

Cite

@article{arxiv.2607.28722,
  title  = {Gravity Probe-DM: The Gravitational Laboratory for Dark Matter},
  author = {Yu-Dai Tsai and Hayden R. Foote},
  journal= {arXiv preprint arXiv:2607.28722},
  year   = {2026}
}

Comments

21 pages, 4 figures