An optical atomic clock using states of rubidium
arXiv:2406.09352 · doi:10.1088/2058-9565/ad77ef
Abstract
We analyze an optical atomic clock using two-photon transitions in rubidium. Four one- and two-color excitation schemes to probe the fine-structure states and are considered in detail. We compare key characteristics of Rb and two-photon clocks. The clock features a high signal-to-noise ratio due to two-photon decay at favorable wavelengths, low dc electric and magnetic susceptibilities, and minimal black-body shifts. Ac Stark shifts from the clock interrogation lasers are compensated by two-color Rabi-frequency matching. We identify a "magic" wavelength near 1060~nm, which allows for in-trap, Doppler-free clock-transition interrogation with lattice-trapped cold atoms. From our analysis of clock statistics and systematics, we project a quantum-noise-limited relative clock stability at the -level, with integration time in seconds, and a relative accuracy of . We describe a potential architecture for implementing the proposed clock using a single telecom clock laser at 1550~nm, which is conducive to optical communication and long-distance clock comparisons. Our work could be of interest in efforts to realize small and portable Rb clocks and in high-precision measurements of atomic properties of Rb -states.
A.D. and C.O. contributed equally to this work; 15 pages, 3 figures, 1 table
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