Multi‐Soliton Microcombs Enable Ultrafast Nanometric‐Precision Ranging and Photon‐Level Detection
Jiawen Zhi, Xiaoyang Guo, Xusheng Yang, Brent E. Little, Sai T. Chu, Chenggang Shao, Mengyu Wang, Yan Liang 等 11 位
Huazhong Agricultural University Xi'an Institute of Optics and Precision Mechanics City University of Hong Kong Nanchang Hangkong University
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Optical microcombs offer unprecedented capabilities in precision ranging due to their compact footprint, broad spectral bandwidth, and high repetition rates. However, practical deployment is limited by a fundamental compromise: single-soliton states exhibit high coherence but low power conversion efficiency, whereas chaotic microcombs achieve higher efficiency at the expense of significant phase noise. Here, we overcome both limitations by implementing multi-soliton microcombs in dual-comb system. Multi-soliton states provide higher efficiency and easier accessibility than single-soliton states, while maintaining high coherence essential for nanometric precision compared to chaotic states. Experimental results indicate that utilizing three solitons in both combs, the measurement uncertainty is within ±17 nm and the precision reaches 1.43 nm at 2 µs and 3.42 pm at 500 µs. We also demonstrate vibration monitoring, spinning disk measurement, and unmanned aerial vehicle tracking. Moreover, with the five-soliton signal comb and single-soliton local comb, photon-level ranging at femtowatt-level power exhibits the uncertainty below ±9.5 µm, achieving the precision of 3.57 µm at 1 s and 202 nm at 50 s. Additionally, we conduct outdoor measurements at ∼270 m and non-line-of-sight imaging. Multi-soliton ranging outperforms single-soliton approaches in precision, speed and efficiency, creating new opportunities in communications, spectroscopy, and optical time transfer.
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Advanced Frequency and Time Standards · Advanced Fiber Optic Sensors
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