Controlling 229Th isomeric state population in a VUV transparent crystal

Author:

Hiraki TakahiroORCID,Okai Koichi,Bartokos MichaelORCID,Beeks KjeldORCID,Fujimoto Hiroyuki,Fukunaga Yuta,Haba Hiromitsu,Kasamatsu YoshitakaORCID,Kitao Shinji,Leitner AdrianORCID,Masuda TakahikoORCID,Guan MingORCID,Nagasawa NobumotoORCID,Ogake Ryoichiro,Pimon MartinORCID,Pressler MartinORCID,Sasao Noboru,Schaden FabianORCID,Schumm ThorstenORCID,Seto Makoto,Shigekawa YudaiORCID,Shimizu Kotaro,Sikorsky TomasORCID,Tamasaku KenjiORCID,Takatori SayuriORCID,Watanabe Tsukasa,Yamaguchi AtsushiORCID,Yoda Yoshitaka,Yoshimi AkihiroORCID,Yoshimura KojiORCID

Abstract

AbstractThe radioisotope thorium-229 (229Th) is renowned for its extraordinarily low-energy, long-lived nuclear first-excited state. This isomeric state can be excited by vacuum ultraviolet (VUV) lasers and 229Th has been proposed as a reference transition for ultra-precise nuclear clocks. To assess the feasibility and performance of the nuclear clock concept, time-controlled excitation and depopulation of the 229Th isomer are imperative. Here we report the population of the 229Th isomeric state through resonant X-ray pumping and detection of the radiative decay in a VUV transparent 229Th-doped CaF2 crystal. The decay half-life is measured to 447(25) s, with a transition wavelength of 148.18(42) 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. Such controlled quenching can be used to significantly speed up the interrogation cycle in future nuclear clock schemes.

Publisher

Springer Science and Business Media LLC

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