Vernier microcombs for integrated optical atomic clocks

IF 32.9 1区 物理与天体物理 Q1 OPTICS Nature Photonics Pub Date : 2025-02-19 DOI:10.1038/s41566-025-01617-0
Kaiyi Wu, Nathan P. O’Malley, Saleha Fatema, Cong Wang, Marcello Girardi, Mohammed S. Alshaykh, Zhichao Ye, Daniel E. Leaird, Minghao Qi, Victor Torres-Company, Andrew M. Weiner
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Abstract

Kerr microcombs have drawn substantial interest as mass-manufacturable, compact alternatives to bulk frequency combs. This could enable the deployment of many comb-reliant applications previously confined to laboratories. Particularly enticing is the prospect of microcombs performing optical frequency division in compact optical atomic clocks. Unfortunately, it is difficult to meet the self-referencing requirement of microcombs in these systems owing to the approximately terahertz repetition rates typically required for octave-spanning comb generation. In addition, it is challenging to spectrally engineer a microcomb system to align a comb mode with an atomic clock transition with a sufficient signal-to-noise ratio. Here we adopt a Vernier dual-microcomb scheme for optical frequency division of a stabilized ultranarrow-linewidth continuous-wave laser at 871 nm to an ~235 MHz output frequency. This scheme enables shifting an ultrahigh-frequency (~100 GHz) carrier-envelope offset beat down to frequencies where detection is possible and simultaneously placing a comb line close to the 871 nm laser—tuned so that, if frequency doubled, it would fall close to the clock transition in 171Yb+. Our dual-comb system can potentially combine with an integrated ion trap towards future chip-scale optical atomic clocks. By pairing an octave-spanning terahertz microcomb with a terahertz Vernier microcomb, a continuous-wave laser at 871 nm is frequency divided to a radiofrequency clock output at 235 MHz. This laser is designed for frequency doubling to reach the ytterbium ion clock transition at 435.5 nm.

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集成光学原子钟用游标微梳
克尔微型梳子作为可批量生产的紧凑型高频梳子的替代品,已经引起了人们的极大兴趣。这可以使以前局限于实验室的许多依赖梳子的应用程序的部署成为可能。特别吸引人的是微型梳在紧凑型光学原子钟中执行光学分频的前景。不幸的是,在这些系统中很难满足微梳的自参考要求,因为生成八度跨度梳子通常需要大约太赫兹的重复率。此外,在光谱工程上设计一个微梳系统,使梳状模式与具有足够信噪比的原子钟跃迁相一致,这是一个挑战。本文采用游标双微梳方案对输出频率为~235 MHz的871 nm稳定超窄线宽连续波激光器进行光分频。该方案能够将超高频(~100 GHz)载波包络偏移拍降至可能检测的频率,同时将梳线放置在接近871 nm激光调谐的地方,这样,如果频率翻倍,它将接近171Yb+中的时钟跃迁。我们的双梳系统可以潜在地与集成离子阱结合,以实现未来芯片级光学原子钟。
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来源期刊
Nature Photonics
Nature Photonics 物理-光学
CiteScore
54.20
自引率
1.70%
发文量
158
审稿时长
12 months
期刊介绍: Nature Photonics is a monthly journal dedicated to the scientific study and application of light, known as Photonics. It publishes top-quality, peer-reviewed research across all areas of light generation, manipulation, and detection. The journal encompasses research into the fundamental properties of light and its interactions with matter, as well as the latest developments in optoelectronic devices and emerging photonics applications. Topics covered include lasers, LEDs, imaging, detectors, optoelectronic devices, quantum optics, biophotonics, optical data storage, spectroscopy, fiber optics, solar energy, displays, terahertz technology, nonlinear optics, plasmonics, nanophotonics, and X-rays. In addition to research papers and review articles summarizing scientific findings in optoelectronics, Nature Photonics also features News and Views pieces and research highlights. It uniquely includes articles on the business aspects of the industry, such as technology commercialization and market analysis, offering a comprehensive perspective on the field.
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