Controlling $^{229}$Th isomeric state population in a VUV transparent crystal
Abstract
The radioisotope Th-229 is renowned for its extraordinarily low-energy, long-lived nuclear first-excited state. This isomeric state can be excited by VUV lasers and the transition from the ground state has been proposed as a reference transition for ultra-precise nuclear clocks. Such nuclear clocks will find multiple applications, ranging from fundamental physics studies to practical implementations. Recent investigations extracted valuable constraints on the nuclear transition energy and lifetime, populating the isomer in stochastic nuclear decay of U-233 or Ac-229. However, to assess the feasibility and performance of the (solid-state) nuclear clock concept, time-controlled excitation and depopulation of the Th isomer together with time-resolved monitoring of the radiative decay are imperative. Here we report the population of the Th isomeric state through resonant X-ray pumping and detection of the radiative decay in a VUV transparent Th-doped CaF crystal. The decay half-life is measured to s, with a transition wavelength of nm and a radiative decay fraction consistent with unity. Furthermore, we report a new ``X-ray quenching'' effect which allows to de-populate the isomer on demand and effectively reduce the half-life by at least a factor 50. Such controlled quenching can be used to significantly speed up the interrogation cycle in future nuclear clock schemes. Our results show that full control over the Th nuclear isomer population can be achieved in a crystal environment. In particular, non-radiative decay processes that might lead to a broadening of the isomer transition linewidth are negligible, paving the way for the development of a compact and robust solid-state nuclear clock. Further studies are needed to reveal the underlying physical mechanism of the X-ray quenching effect.
Cite
@article{arxiv.2405.09577,
title = {Controlling $^{229}$Th isomeric state population in a VUV transparent crystal},
author = {Takahiro Hiraki and Koichi Okai and Michael Bartokos and Kjeld Beeks and Hiroyuki Fujimoto and Yuta Fukunaga and Hiromitsu Haba and Yoshitaka Kasamatsu and Shinji Kitao and Adrian Leitner and Takahiko Masuda and Guan Ming and Nobumoto Nagasawa and Ryoichiro Ogake and Martin Pimon and Martin Pressler and Noboru Sasao and Fabian Schaden and Thorsten Schumm and Makoto Seto and Yudai Shigekawa and Koutaro Shimizu and Tomas Sikorsky and Kenji Tamasaku and Sayuri Takatori and Tsukasa Watanabe and Atsushi Yamaguchi and Yoshitaka Yoda and Akihiro Yoshimi and Koji Yoshimura},
journal= {arXiv preprint arXiv:2405.09577},
year = {2024}
}
Comments
14 pages with 8 figures and 2 tables