Self-mixing thinly sliced ruby laser for laser Doppler velocimetry with high optical sensitivity

被引:0
|
作者
Sudo, Seiichi [1 ]
Otsuka, Kenju [2 ]
机构
[1] Tokyo City Univ, Dept Phys, Tokyo, Tokyo 1588557, Japan
[2] TS 3 L Res, Yamaguchi 126 7, Tokorozawa, Yamaguchi 3591145, Japan
来源
OPTICS CONTINUUM | 2024年 / 3卷 / 11期
基金
日本学术振兴会;
关键词
GAIN; OSCILLATION; INTERFERENCE; PARTICLES; DYNAMICS; SIGNAL; MODES; BEAMS; FLOW;
D O I
10.1364/OPTCON.532807
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
In self-mixing laser Doppler velocimetry (LDV), the motion of a moving target is observed by using intensity-modulated laser light detected by a simple photodetector. Here, the self-mixing laser output modulation takes place, reflecting the pronounced effective loss modulation index, which is proportional to the fluorescence-to-photon lifetime ratio. The fluorescence lifetime of a ruby laser is extremely long, so if a ruby crystal can be used as a laser light source for a self-mixing LDV system, high-sensitivity LDV measurements can be performed with it. We describe a method for velocimetry of moving targets using self-mixing LDV in which a CW oscillating ruby laser is the light source. The oscillation mechanism of the thin-slice ruby laser with a large fluorescence-to-photon lifetime ratio, which is suitable for LDV measurements, is clarified and the results of highly sensitive LDV measurements are presented, featuring nonlinear dynamics observed associated with the self-mixing velocimetry experiment. The measurement accuracy is clarified by measuring the rotating disc with various conditions using self-mixing LDV. (c) 2024 Optica Publishing Group under the terms of the Optica Open Access Publishing Agreement
引用
收藏
页码:2174 / 2189
页数:16
相关论文
共 50 条
  • [1] Laser diode self-mixing technique for liquid velocimetry
    Alexandrova, A.
    Welsch, C. P.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2016, 830 : 497 - 503
  • [2] Ultralow Doppler frequency extraction for the self-mixing dual-frequency laser velocimetry
    Chen, Junbao
    Wang, Xinmeng
    Wu, Yubao
    Yang, Yitao
    Qiu, Mingyue
    Wang, Ming
    Li, Yuzhi
    APPLIED OPTICS, 2022, 61 (16) : 4687 - 4692
  • [3] All-fiber self-mixing laser Doppler velocimetry with much less than 0.1 pW optical feedback based on adjustable gain
    Zhao, Yuanyang
    Zhu, Desheng
    Chen, Youze
    Tu, Yourui
    Bi, Tiezhu
    Zhao, Yunkun
    Yu, Benli
    Lu, Liang
    OPTICS LETTERS, 2020, 45 (13) : 3565 - 3568
  • [4] Analysis of molecular dynamics of colloidal particles in transported dilute samples by self-mixing laser Doppler velocimetry
    Sudo, Seiichi
    Ohtomo, Takayuki
    Iwamatsu, Masao
    Osada, Tuyoshi
    Otsuka, Kenju
    APPLIED OPTICS, 2012, 51 (03) : 370 - 377
  • [5] Enhanced self-mixing Doppler velocimetry by fiber Bragg grating
    Lin, Hao
    Chen, Junbao
    Xia, Wei
    Hao, Hui
    Guo, Dongmei
    Wang, Ming
    OPTICAL ENGINEERING, 2018, 57 (05)
  • [6] Self-mixing birefringent dual-frequency laser Doppler velocimeter
    Chen, Junbao
    Zhu, Hongbin
    Xia, Wei
    Guo, Dongmei
    Hao, Hui
    Wang, Ming
    OPTICS EXPRESS, 2017, 25 (02): : 560 - 572
  • [7] Laser diode self-mixing interferometry for velocity measurements
    Alexandrova, Alexandra S.
    Tzoganis, Vasilis
    Welsch, Carsten P.
    OPTICAL ENGINEERING, 2015, 54 (03)
  • [8] A wavelength analyzer using laser self-mixing interferometry
    Han, Yu
    Kou, Ke
    Wang, Cuo
    Song, Zewei
    OPTICS AND LASERS IN ENGINEERING, 2024, 183
  • [9] Laser Doppler velocimeter using the self-mixing effect of a fiber ring laser with ultra-narrow linewidth
    Xiang, Rong
    Wang, Chenchen
    Lu, Liang
    JOURNAL OF OPTICS-INDIA, 2019, 48 (03): : 384 - 392
  • [10] All-Fiber Configuration Laser Self-Mixing Doppler Velocimeter Based on Distributed Feedback Fiber Laser
    Wu, Shuang
    Wang, Dehui
    Xiang, Rong
    Zhou, Junfeng
    Ma, Yangcheng
    Gui, Huaqiao
    Liu, Jianguo
    Wang, Huanqin
    Lu, Liang
    Yu, Benli
    SENSORS, 2016, 16 (08)