4.6 Review

Noise Measurement and Reduction in Mode-Locked Lasers: Fundamentals for Low-Noise Optical Frequency Combs

Journal

APPLIED SCIENCES-BASEL
Volume 11, Issue 16, Pages -

Publisher

MDPI
DOI: 10.3390/app11167650

Keywords

mode-locked laser; noise measurement; optical frequency comb

Funding

  1. National Natural Science Foundation of China [618278221]
  2. Tianjin Research Program of Application Foundation and Advanced Technology of China [17JCJQJC43500]
  3. State Key Laboratory of Advanced Optical Communication Systems and Networks, Shanghai Jiao Tong University, China [2020GZKF011]

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This review discusses the theoretical models of noise in mode-locked lasers and recent advancements in noise measurement for ultra-low-noise optical frequency combs, as well as their potential applications. The technology is envisioned to be fulfilled in novel optical frequency combs such as electro-optic modulated combs, microcombs, and quantum cascade laser combs.
After five decades of development, mode-locked lasers have become significant building blocks for many optical systems in scientific research, industry, and biomedicine. Advances in noise measurement and reduction are motivated for both shedding new light on the fundamentals of realizing ultra-low-noise optical frequency combs and their extension to potential applications for standards, metrology, clock comparison, and so on. In this review, the theoretical models of noise in mode-locked lasers are first described. Then, the recent techniques for timing jitter, carrier-envelope phase noise, and comb-line noise measurement and their stabilization are summarized. Finally, the potential of the discussed technology to be fulfilled in novel optical frequency combs, such as electro-optic (EO) modulated combs, microcombs, and quantum cascade laser (QCL) combs, is envisioned.

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