Yang Qi-Fan, Shen Boqiang, Wang Heming, Tran Minh, Zhang Zhewei, Yang Ki Youl, Wu Lue, Bao Chengying, Bowers John, Yariv Amnon, Vahala Kerry
T. J. Watson Laboratory of Applied Physics, California Institute of Technology, Pasadena, CA 91125, USA.
Department of Electrical and Computer Engineering, University of California, Santa Barbara, CA 93106, USA.
Science. 2019 Mar 1;363(6430):965-968. doi: 10.1126/science.aaw2317. Epub 2019 Feb 21.
Determination of laser frequency with high resolution under continuous and abrupt tuning conditions is important for sensing, spectroscopy, and communications. We show that a single microresonator provides rapid and broadband measurement of optical frequencies with a relative frequency precision comparable to that of conventional dual-frequency comb systems. Dual-locked counterpropagating solitons having slightly different repetition rates were used to implement a vernier spectrometer, which enabled characterization of laser tuning rates as high as 10 terahertz per second, broadly step-tuned lasers, multiline laser spectra, and molecular absorption lines. Besides providing a considerable technical simplification through the dual-locked solitons and enhanced capability for measurement of arbitrarily tuned sources, our results reveal possibilities for chip-scale spectrometers that exceed the performance of tabletop grating and interferometer-based devices.
在连续调谐和突变调谐条件下高分辨率地测定激光频率对于传感、光谱学和通信而言至关重要。我们表明,单个微谐振器能够以与传统双频梳状系统相当的相对频率精度,对光频率进行快速且宽带的测量。利用具有略微不同重复率的双锁反向传播孤子来实现游标光谱仪,该光谱仪能够表征高达每秒10太赫兹的激光调谐速率、宽范围步进调谐激光器、多线激光光谱以及分子吸收线。除了通过双锁孤子实现显著的技术简化以及增强对任意调谐光源的测量能力之外,我们的结果还揭示了芯片级光谱仪超越基于桌面光栅和干涉仪的设备性能的可能性。