法布里-珀罗干涉仪
光子集成电路
光子学
电子线路
光电子学
集成电路
光学
计算机科学
电子工程
物理
电气工程
工程类
波长
作者
Haotian Cheng,Chao Xiang,Naijun Jin,Igor Kudelin,Joel Guo,Matthew Heyrich,Yifan Liu,Jonathan D. Peters,Qing-Xin Ji,Yishu Zhou,Kerry J. Vahala,Franklyn Quinlan,Scott A. Diddams,John E. Bowers,Peter T. Rakich
出处
期刊:Cornell University - arXiv
日期:2024-10-01
标识
DOI:10.48550/arxiv.2410.01095
摘要
Compact photonic systems that offer high frequency stability and low noise are of increasing importance to applications in precision metrology, quantum computing, communication, and advanced sensing technologies. However, on-chip resonators comprised of dielectrics cannot match the frequency stability and noise characteristics of Fabry-Perot cavities, whose electromagnetic modes live almost entirely in vacuum. In this study, we present a novel strategy to interface micro-fabricated Fabry-Perot cavities with photonic integrated circuits to realize compact, high-performance integrated systems. Using this new integration approach, we demonstrate self-injection locking of an on-chip laser to a milimeter-scale vacuum-gap Fabry-Perot using a circuit interface that transforms the reflected cavity response to enable efficient feedback to the laser. This system achieves a phase noise of -97 dBc/Hz at 10 kHz offset frequency, a fractional frequency stability of 5*10-13 at 10 ms, a 150 Hz 1/pi integral linewidth, and a 35 mHz fundamental linewidth. We also present a complementary integration strategy that utilizes a vertical emission grating coupler and a back-reflection cancellation circuit to realize a fully co-integrated module that effectively redirects the reflected signals and isolates back-reflections with a 10 dB suppression ratio, readily adaptable for on-chip PDH locking. Together, these demonstrations significantly enhance the precision and functionality of RF photonic systems, paving the way for continued advancements in photonic applications.
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