4.1 Review

Review of low timing jitter mode-locked fiber lasers and applications in dual-comb absolute distance measurement

期刊

NANOTECHNOLOGY AND PRECISION ENGINEERING
卷 1, 期 4, 页码 205-217

出版社

AIP Publishing
DOI: 10.1016/j.npe.2018.12.002

关键词

Timing jitter; Mode-locked lasers; Dual-comb; Absolute distance measurement

资金

  1. National Natural Science Foundation of China [61475162, 61675150, 61535009]
  2. Tianjin Natural Science Foundation [18JCYBJC16900]
  3. Tianjin Research Program of Application Foundation and Advanced Technology [17JCJQJC43500]

向作者/读者索取更多资源

Passively mode-locked fiber lasers emit femtosecond pulse trains with excellent short-term stability. The quantum-limited timing jitter of a free running femtosecond erbium-doped fiber laser working at room temperature is considerably below one femtosecond at high Fourier frequency. The ultrashort pulse train with ultralow timing jitter enables absolute time-of-flight measurements based on a dual-comb implementation, which is typically composed of a pair of optical frequency combs generated by femtosecond lasers. Dead-zone-free absolute distance measurement with sub-micrometer precision and kHz update rate has been routinely achieved with a dual-comb configuration, which is promising for a number of precision manufacturing applications, from large step-structure measurements prevalent in microelectronic profilometry to three coordinate measurements in large-scale aerospace manufacturing and shipbuilding. In this paper, we first review the sub-femtosecond precision timing jitter characterization methods and approaches for ultralow timing jitter mode-locked fiber laser design. Then, we provide an overview of the state-of-the-art dual-comb absolute ranging technology in terms of working principles, experimental implementations, and measurement precisions. Finally, we discuss the impact of quantum-limited timing jitter on the dual-comb ranging precision at a high update rate. The route to highprecision dual-comb range finder design based on ultralow jitter femtosecond fiber lasers is proposed. Copyright (C) 2018 Tianjin University. Publishing Service by Elsevier B.V. on behalf of KeAi Communications Co., Ltd.

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