论文标题

通过芯片尺度的孤子微型群岛纳米精度距离计量学

Nanometric precision distance metrology via chip-scale soliton microcombs

论文作者

Jang, Yoon-Soo, Liu, Hao, Yang, Jinghui, Yu, Mingbin, Kwong, Dim-Lee, Wong, Chee Wei

论文摘要

激光干涉测量法在科学和技术中起着基本作用,有助于精确的计量学和维度长度测量。在过去的十年中,激光频率梳 - 在广泛的光谱范围内具有一致的光学微波频率标尺,可追溯到时间频率标准 - 在激光尺寸计量学中贡献了关键作用,并且在测量精度方面的需求不断增长。在这里,我们通过孤子频率微栓报告频谱分辨的激光尺寸计量学,具有纳米尺度的精度。光谱干涉法提供了有关光学飞行时间签名的信息,微型伯恩的较大自由光谱范围和高含量可以通过光谱仪器直接读取牙齿可分离和高可见性干涉图。我们采用了来自梳状同源性干涉仪和频谱分辨干涉测量法的混合时序信号 - 全部来自相同的光谱干涉图。我们组合的孤子和同源性结构表明,通过同源性干涉法实现了3 nm的可重复性,并且在白噪声限制下,长期精度计量学以超过1,000秒的稳定性。

Laser interferometry serves a fundamental role in science and technology, assisting precision metrology and dimensional length measurement. During the past decade, laser frequency combs - a coherent optical-microwave frequency ruler over a broad spectral range with traceability to time-frequency standards - have contributed pivotal roles in laser dimensional metrology with ever-growing demands in measurement precision. Here we report spectrally-resolved laser dimensional metrology via a soliton frequency microcomb, with nanometric-scale precision. Spectral interferometry provides information on the optical time-of-flight signature, and the large free-spectral range and high-coherence of the microcomb enables tooth-resolved and high-visibility interferograms that can be directly readout with optical spectrum instrumentation. We employ a hybrid timing signal from comb-line homodyne interferometry and microcomb spectrally-resolved interferometry - all from the same spectral interferogram. Our combined soliton and homodyne architecture demonstrates a 3-nm repeatability achieved via homodyne interferometry, and over 1,000-seconds stability in the long-term precision metrology at the white noise limits.

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