Broadband cavity-enhanced Kerr Comb spectroscopy on Chip

Andrei Diakonov, Konstantin Khrizman, Eliran Zano, Liron Stern
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Abstract

The broad and equidistant spectrum of frequency combs has had a profound impact on spectroscopic studies. Particularly, experiments involving the coupling of frequency combs to cavities have already enabled unprecedented broadband and sensitive spectroscopy on a single-molecule level. The emergence of integrated, compact, and broadband Kerr-microcombs holds promise to bring many metrological and spectroscopic studies outside of the lab. However, performing cavity-enhanced direct frequency comb spectroscopy on-chip has remained a challenge. Here, we couple a microcomb source with a microcavity to extend the advantages of cavity-enhanced spectroscopy to photonically integrated circuits. By harnessing the coherent nature of the Kerr-comb and high-Q microcavity enhancement, we obtain a detailed dispersion landscape of the guided-wave mode and comprehensive frequency-dependent cavity lineshapes. Our microcomb-cavity coupling can facilitate photonically integrated cavity-enhanced biochemical spectroscopy by evanescently coupling analytes to the cavity’s guided mode, a mode of operation we analyze numerically and provide guidelines for its potential implementation. Demonstrated detailed dispersion measurements, overperforming state-of-the-art table-top tunable lasers in available bandwidth, show potential for integrated non-linear optics applications, as precise dispersion management is crucial for such processes. Our chip-scale comb-cavity coupled platform suggests an integrated, broadband, cost-effective, and accurate tool for the non-linear optics studies as well as for ultra-compact bio- and chemical-sensing platform.

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片上宽带腔增强克尔梳光谱
频率梳的广谱和等距谱对光谱学研究产生了深远的影响。特别是,涉及频率梳与空腔耦合的实验已经在单分子水平上实现了前所未有的宽带和敏感光谱。集成的、紧凑的、宽带kerr -microcomb的出现有望将许多计量和光谱研究带到实验室之外。然而,在芯片上实现腔增强直接频率梳谱仍然是一个挑战。在这里,我们将微梳源与微腔耦合,以将腔增强光谱的优势扩展到光子集成电路中。通过利用克尔梳和高q微腔增强的相干特性,我们获得了导波模式的详细色散景观和全面的频率相关腔线形。我们的微梳-腔耦合可以通过将分析物瞬时耦合到腔的引导模式来促进光子集成腔增强生化光谱,我们对这种操作模式进行了数值分析,并为其潜在的实现提供了指导。演示了详细的色散测量,在可用带宽上优于最先进的桌面可调谐激光器,显示了集成非线性光学应用的潜力,因为精确的色散管理对于这些过程至关重要。我们的芯片级梳腔耦合平台为非线性光学研究以及超紧凑的生物和化学传感平台提供了一个集成的、宽带的、具有成本效益的和精确的工具。
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