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集成调频光参量振荡器。

Integrated frequency-modulated optical parametric oscillator.

机构信息

Department of Applied Physics and Ginzton Laboratory, Stanford University, Stanford, CA, USA.

Department of Electrical Engineering, Stanford University, Stanford, CA, USA.

出版信息

Nature. 2024 Mar;627(8002):95-100. doi: 10.1038/s41586-024-07071-2. Epub 2024 Mar 6.

Abstract

Optical frequency combs have revolutionized precision measurement, time-keeping and molecular spectroscopy. A substantial effort has developed around 'microcombs': integrating comb-generating technologies into compact photonic platforms. Current approaches for generating these microcombs involve either the electro-optic or Kerr mechanisms. Despite rapid progress, maintaining high efficiency and wide bandwidth remains challenging. Here we introduce a previously unknown class of microcomb-an integrated device that combines electro-optics and parametric amplification to yield a frequency-modulated optical parametric oscillator (FM-OPO). In contrast to the other solutions, it does not form pulses but maintains operational simplicity and highly efficient pump power use with an output resembling a frequency-modulated laser. We outline the working principles of our device and demonstrate it by fabricating the complete optical system in thin-film lithium niobate. We measure pump-to-comb internal conversion efficiency exceeding 93% (34% out-coupled) over a nearly flat-top spectral distribution spanning about 200 modes (over 1 THz). Compared with an electro-optic comb, the cavity dispersion rather than loss determines the FM-OPO bandwidth, enabling broadband combs with a smaller radio-frequency modulation power. The FM-OPO microcomb offers robust operational dynamics, high efficiency and broad bandwidth, promising compact precision tools for metrology, spectroscopy, telecommunications, sensing and computing.

摘要

光学频率梳已经彻底改变了精密测量、计时和分子光谱学。人们已经投入了大量精力来研究“微梳”:将梳状生成技术集成到紧凑的光子平台中。目前产生这些微梳的方法涉及电光或克尔机制。尽管取得了快速进展,但保持高效率和宽带宽仍然具有挑战性。在这里,我们介绍了一类以前未知的微梳——一种集成器件,它结合了电光和参量放大,产生了频率调制的光参量振荡器 (FM-OPO)。与其他解决方案不同,它不形成脉冲,但保持操作简单,并高效利用泵浦功率,输出类似于调频激光器。我们概述了我们的器件的工作原理,并通过在薄膜铌酸锂中制造完整的光学系统来演示它。我们测量到的泵浦到梳状内部转换效率超过 93%(34%输出耦合),光谱分布接近平顶,跨度约 200 个模式(超过 1 THz)。与电光梳相比,腔色散而不是损耗决定了 FM-OPO 的带宽,从而可以使用更小的射频调制功率实现宽带梳状。FM-OPO 微梳具有稳健的工作动态、高效率和宽带宽,有望成为用于计量学、光谱学、电信、传感和计算的紧凑型精密工具。

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