Range expansion of FMCW LiDAR by using a swept optical frequency comb and phase noise compensation

In frequency-modulated continuous-wave (FMCW) ranging, there exist fundamental limitations on the measurement distance, refresh rate, and depth resolution imposed by the bandwidth of the photodetector. In addition, the coherence of the light source degrades interferometric performance in long-range measurements, thereby constituting another limiting factor on the achievable measurement distance. In this paper, we propose a wavelength-swept optical frequency comb–based approach to overcome the bandwidth-imposed limitation. Furthermore, by applying a phase noise compensation (PNC) method originally developed for optical frequency domain reflectometry (OFDR), the coherence-related limitation is simultaneously mitigated, enabling long-range and high-precision FMCW LiDAR. The theoretical framework of the proposed scheme is presented, and proof-of-principle experiments under fiber-emulated long-delay conditions are performed to demonstrate mitigation of the bandwidth limitation using a wavelength-swept frequency comb with three discrete frequency components. In addition, the coherence-limited range is extended to 12 times that achievable with conventional FMCW schemes.

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Publication Details

Journal
Applied Optics
Published
2026-10-07
DOI
https://doi.org/10.1364/ao.609482
Primary Topic
Advanced Optical Sensing Technologies
Type
article
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article

Range expansion of FMCW LiDAR by using a swept optical frequency comb and phase noise compensation

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Advanced Optical Sensing Technologies
article

Range expansion of FMCW LiDAR by using a swept optical frequency comb and phase noise compensation

Atsushi Nakamura, Chao Zhang, Fumihiko Ito, Shingo Ohno, Yuto Kusaka, Kunihiro Toge, Takahiro Nagata
article en

Abstract

In frequency-modulated continuous-wave (FMCW) ranging, there exist fundamental limitations on the measurement distance, refresh rate, and depth resolution imposed by the bandwidth of the photodetector. In addition, the coherence of the light source degrades interferometric performance in long-range measurements, thereby constituting another limiting factor on the achievable measurement distance. In this paper, we propose a wavelength-swept optical frequency comb–based approach to overcome the bandwidth-imposed limitation. Furthermore, by applying a phase noise compensation (PNC) method originally developed for optical frequency domain reflectometry (OFDR), the coherence-related limitation is simultaneously mitigated, enabling long-range and high-precision FMCW LiDAR. The theoretical framework of the proposed scheme is presented, and proof-of-principle experiments under fiber-emulated long-delay conditions are performed to demonstrate mitigation of the bandwidth limitation using a wavelength-swept frequency comb with three discrete frequency components. In addition, the coherence-limited range is extended to 12 times that achievable with conventional FMCW schemes.

Applied OpticsVol. 65(29)
Kogakuin University (JP), NTT (Japan) (JP), The University of Tokyo (JP)
Openalex Percentile: Top 14%
Advanced Optical Sensing Technologies
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