English

Frequency reproducibility of solid-state Th-229 nuclear clocks

Atomic Physics 2025-07-04 v1 Nuclear Experiment Optics Quantum Physics

Abstract

Solid-state 229^{229}Th nuclear clocks are set to provide new opportunities for precision metrology and fundamental physics. Taking advantage of a nuclear transition's inherent low sensitivity to its environment, orders of magnitude more emitters can be hosted in a solid-state crystal compared to current optical lattice atomic clocks. Furthermore, solid-state systems needing only simple thermal control are key to the development of field-deployable compact clocks. In this work, we explore and characterize the frequency reproducibility of the 229^{229}Th:CaF2_2 nuclear clock transition, a key performance metric for all clocks. We measure the transition linewidth and center frequency as a function of the doping concentration, temperature, and time. We report the concentration-dependent inhomogeneous linewidth of the nuclear transition, limited by the intrinsic host crystal properties. We determine an optimal working temperature for the 229^{229}Th:CaF2_2 nuclear clock at 195(5) K where the first-order thermal sensitivity vanishes. This would enable in-situ temperature co-sensing using different quadrupole-split lines, reducing the temperature-induced systematic shift below the 1018^{-18} fractional frequency uncertainty level. At 195 K, the reproducibility of the nuclear transition frequency is 280 Hz (fractionally 1.4×10131.4\times10^{-13}) for two differently doped 229^{229}Th:CaF2_2 crystals over four months. These results form the foundation for understanding, controlling, and harnessing the coherent nuclear excitation of 229^{229}Th in solid-state hosts, and for their applications in constraining temporal variations of fundamental constants.

Keywords

Cite

@article{arxiv.2507.01180,
  title  = {Frequency reproducibility of solid-state Th-229 nuclear clocks},
  author = {Tian Ooi and Jack F. Doyle and Chuankun Zhang and Jacob S. Higgins and Jun Ye and Kjeld Beeks and Tomas Sikorsky and Thorsten Schumm},
  journal= {arXiv preprint arXiv:2507.01180},
  year   = {2025}
}

Comments

11 pages, 4 figures, 1 extended data figure

R2 v1 2026-07-01T03:42:21.085Z