English

Probing Ultralight Dark Matter at the Mega-Planck Scale with the Thorium Nuclear Clock

High Energy Physics - Phenomenology 2026-02-20 v1 Nuclear Experiment Atomic Physics

Abstract

Ultralight dark matter is expected to induce oscillations of nuclear parameters. These oscillations are characterized by extremely weak couplings or high suppression scales, with the Planck scale - the characteristic scale of quantum gravity - serving as a natural benchmark. Probing this phenomenon requires systems with exceptional sensitivity to shifts in nuclear energies. The uniquely low-energy nuclear isomeric transition in 229{}^{229}Th provides such sensitivity: it directly probes the nuclear interaction and, owing to a near cancellation between electromagnetic and nuclear contributions, its response to changes in nuclear structure is greatly amplified. We devise and perform a new type of ultrasensitive search for dark matter which uses the precision nuclear spectroscopy at JILA to set the strongest bounds in the mass range 1021eVmDM1019eV10^{-21}\,{\rm eV} \lesssim m_{\rm DM} \lesssim 10^{-19}\,{\rm eV}. Our results probe effective interaction scales exceeding 10610^6 times the Planck scale (the Mega-Planck scale) and establish the 229{}^{229}Th system as the leading probe of dark matter couplings to the nuclear sector.

Keywords

Cite

@article{arxiv.2602.16804,
  title  = {Probing Ultralight Dark Matter at the Mega-Planck Scale with the Thorium Nuclear Clock},
  author = {Jason Arakawa and Jack F. Doyle and Elina Fuchs and Jacob S. Higgins and Fiona Kirk and Kai Li and Tian Ooi and Gilad Perez and Wolfram Ratzinger and Marianna S. Safronova and Thorsten Schumm and Jun Ye and Chuankun Zhang},
  journal= {arXiv preprint arXiv:2602.16804},
  year   = {2026}
}

Comments

14 pages, 9 figures