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Cryogenic Optical Lattice Clock with 1.7×10−20 Blackbody Radiation Stark Uncertainty

Youssef S. Hassan1,2, Kyle Beloy1, Jacob L. Siegel1,2, Takumi Kobayashi1,3, Eric Swiler1,2, Tanner Grogan1,2, Roger C. Brown1,2, Tristan Rojo1,2, Tobias Bothwell1 et al.

Benjamin D. Hunt1,2, Adam Halaoui1, and Andrew D. Ludlow1,2,4,*

  • *Contact author: andrew.ludlow@nist.gov

Phys. Rev. Lett. 135, 063402 – Published 5 August, 2025

DOI: https://doi.org/10.1103/4tky-jmsm

Abstract

Controlling the Stark perturbation from ambient thermal radiation is key to advancing the performance of many atomic frequency standards, including state-of-the-art optical lattice clocks (OLCs). We demonstrate a cryogenic OLC that utilizes a dynamically actuated radiation shield to control the perturbation at 1.7×10−20 fractional frequency, a factor of ∼40 beyond the best OLC to date. Our shield furnishes the atoms with a near-ideal cryogenic blackbody radiation (BBR) environment by rejecting external thermal radiation at the part-per-million level during clock spectroscopy, overcoming a key limitation with previous cryogenic BBR control solutions in OLCs. While the lowest BBR shift uncertainty is realized with cryogenic operation, we further exploit the radiation control that the shield offers over a wide range of temperatures to directly measure and verify the leading BBR Stark dynamic correction coefficient for ytterbium. This independent measurement reduces the literature-combined uncertainty of this coefficient by 30%, thus benefiting state-of-the-art Yb OLCs operated at room temperature. We verify the static BBR coefficient for Yb at the low 10−18 level.

Physics Subject Headings (PhySH)

synopsis

Radiation Shield Improves Optical Clocks

Published 5 August, 2025

A new experimental design eliminates the top source of clock uncertainty.

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