Dual chirped micro-comb based parallel ranging at megapixel-line rates
Anton Lukashchuk, Johann Riemensberger, Maxim Karpov, Junqiu Liu,, Tobias J. Kippenberg

TL;DR
This paper introduces a novel dual-soliton microcomb technique for coherent LiDAR that achieves megapixel per second line scan rates, enabling real-time high-resolution imaging with simplified hardware and integrated photonics.
Contribution
The paper presents a new swept dual-soliton microcomb method for high-speed coherent ranging and velocimetry, demonstrating megapixel per second line scan rates using spectrally dispersed microcombs.
Findings
Achieved coherent LiDAR at megapixel per second line scan rates.
Utilized dual microcombs for simultaneous distance and velocity measurement.
Implemented a hardware-efficient, photonic integrated solution.
Abstract
Laser based ranging (LiDAR) - already ubiquitously used in industrial monitoring, atmospheric dynamics, or geodesy - is key sensor technology. Coherent laser ranging, in contrast to time-of-flight approaches, is immune to ambient light, operates continuous wave allowing higher average powers, and yields simultaneous velocity and distance information. State-of-the-art coherent single laser-detector architectures reach hundreds of kilopixel per second rates. While emerging applications such as autonomous driving, robotics, and augmented reality mandate megapixel per second point sampling to support real-time video-rate imaging. Yet, such rates of coherent LiDAR have not been demonstrated. Here we report a swept dual-soliton microcomb technique enabling coherent ranging and velocimetry at megapixel per second line scan measurement rates with up to 64 spectrally dispersed optical channels.…
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