Laser spectroscopy of triply charged <sup>229</sup>Th isomer for a nuclear clock.

Yamaguchi, Atsushi; Shigekawa, Yudai; Haba, Hiromitsu; Kikunaga, Hidetoshi; Shirasaki, Kenji; Wada, Michiharu; Katori, Hidetoshi · Nature · 2024

basic_science · Level V

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Abstract

Thorium-229 (<sup>229</sup>Th) possesses an optical nuclear transition between the ground state (<sup>229g</sup>Th) and low-lying isomer (<sup>229m</sup>Th). A nuclear clock based on this nuclear-transition frequency is expected to surpass existing atomic clocks owing to its insusceptibility to surrounding fields<sup>1-5</sup>. In contrast to other charge states, triply charged <sup>229</sup>Th (<sup>229</sup>Th<sup>3+</sup>) is the most suitable for highly accurate nuclear clocks because it has closed electronic transitions that enable laser cooling, laser-induced fluorescence detection and state preparation of ions<sup>1,6-8</sup>. Although laser spectroscopic studies of <sup>229</sup>Th<sup>3+</sup> in the nuclear ground state have been performed<sup>8</sup>, properties of <sup>229m</sup>Th<sup>3+</sup>, including its nuclear decay lifetime that is essential to specify the intrinsic linewidth of the nuclear-clock transition, remain unknown. Here we report the trapping of <sup>229m</sup>Th<sup>3+</sup> continuously supplied by a <sup>233</sup>U source and the determination of nuclear decay half-life of the isolated <sup>229m</sup>Th<sup>3+</sup> to be <math xmlns="http://www.w3.org/1998/Math/MathML"> <mrow> <msubsup><mrow><mi>1,400</mi></mrow> <mrow><mo>-</mo> <mn>300</mn></mrow> <mrow><mo>+</mo> <mn>600</mn></mrow> </msubsup> <mspace></mspace> <mi>s</mi></mrow> </math> through nuclear-state-selective laser spectroscopy. Furthermore, by determining the hyperfine constants of <sup>229m</sup>Th<sup>3+</sup>, we reduced the uncertainty of the sensitivity of the <sup>229</sup>Th nuclear clock to variations in the fine-structure constant by a factor of four. These results offer key parameters for the <sup>229</sup>Th<sup>3+</sup> nuclear clock and its applications in the search for new physics.