English

A method to detect the VUV photons from cooled $^{229}$Th:CaF$_2$ crystals

Instrumentation and Detectors 2025-01-14 v2 Nuclear Experiment

Abstract

Thorium-229, with its exceptionally low-energy nuclear excited state, is a key candidate for developing nuclear clocks. 229^{229}Th-doped CaF2_2 crystals, benefiting from calcium fluoride's wide band gap, show great promise as solid-state nuclear clock materials. These crystals are excited by vacuum ultraviolet (VUV) lasers, which over time cause radiation damage. Cooling the crystals can mitigate this damage but introduces a challenge: photoabsorption. This occurs when residual gas molecules condense on the crystal surface, absorbing VUV photons and deteriorating detection efficiency. To solve this, we developed a cooling technique using a copper shield to surround the crystal, acting as a cold trap. This prevents ice-layer formation, even at temperatures below 100-100\,^\circC, preserving high VUV photon detection efficiency. Our study detailed the experimental cooling setup and demonstrated the effectiveness of the copper shield in maintaining crystal performance, a critical improvement for future solid-state nuclear clocks operating at cryogenic temperatures.

Keywords

Cite

@article{arxiv.2410.18134,
  title  = {A method to detect the VUV photons from cooled $^{229}$Th:CaF$_2$ crystals},
  author = {Ming Guan and Michael Bartokos and Kjeld Beeks and Yuta Fukunaga and Takahiro Hiraki and Takahiko Masuda and Yuki Miyamoto and Ryoichiro Okage and Koichi Okai and Noboru Sasao and Fabian Schaden and Thorsten Schumm and Koutaro Shimizu and Sayuri Takatori and Akihiro Yoshimi and Koji Yoshimura},
  journal= {arXiv preprint arXiv:2410.18134},
  year   = {2025}
}

Comments

5 figures, 5 pages