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Frequency Stability of 2.5×10−17 from a Si Cavity with AlGaAs Crystalline Mirrors

Dahyeon Lee1,*, Zoey Z. Hu1, Ben Lewis1, Alexander Aeppli1, Kyungtae Kim1, Zhibin Yao1, Thomas Legero2, Daniele Nicolodi2, Fritz Riehle2 et al.

Uwe Sterr2 and Jun Ye1,†

  • *Contact author: dahyeon.lee@colorado.edu
  • †Contact author: ye@jila.colorado.edu

Phys. Rev. Lett. 136, 033801 – Published 20 January, 2026

DOI: https://doi.org/10.1103/zgrm-cjbb

Abstract

Developments in ultrastable lasers have fueled remarkable advances in optical frequency metrology and quantum science. A key ingredient in further improving laser frequency stability is the use of low-noise mirror materials such as AlGaAs crystalline coatings. However, excess noise observed with these coatings limits the performance of cryogenic silicon cavities with AlGaAs mirrors to similar levels achieved with conventional dielectric coatings. With a new pair of crystalline coated mirrors in a 6-cm-long cryogenic silicon cavity operated at 17 K, we demonstrate a clear advantage of crystalline coatings over dielectric coatings. The achieved fractional frequency stability of 2.5×10−17 at 10 s is four times better than expected for dielectric mirrors and corresponds to more than a tenfold reduction in the coating mechanical loss factor. We also combine two silicon cavities to demonstrate optical frequency averaging for enhanced stability. In addition, we present a long-term frequency drift record of four cryogenic silicon cavities measured over several years. These results open up realistic prospects for cavity-stabilized lasers with 10−18 fractional stability, as well as an all-optical timescale with continuously operating optical local oscillators.

Physics Subject Headings (PhySH)

synopsis

A Very Stable Mirror

Published 20 January, 2026

A crystalline mirror coating significantly reduces fluctuations in the resonant frequency of an optical cavity.

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