发光学报, 2018, 39 (6): 802, 网络出版: 2018-08-26   

全光纤调Q激光器腔内脉宽压缩技术

Internal Pulse Width Compression Technology of All-fiber Q-switched Laser
作者单位
北京工业大学 激光工程研究院, 北京 100124
摘要
为了压缩MOPA全光纤调Q激光器脉冲宽度, 对谐振腔基本参数进行了研究。首先, 根据速率方程理论推导出脉冲宽度的表达式, 通过数值解建立表达式参数与脉冲宽度的关系。然后, 分析增益光纤长度、腔镜输出透过率、Q开关性能等谐振腔基本参数对全光纤调Q种子源输出脉冲宽度的影响并通过实验来逐一验证结果。最后, 通过优化的参数搭建全光纤调Q激光器, 在重复频率为20 kHz时, 得到脉冲宽度为54 ns、平均功率为0.86 W的种子激光输出。在重复频率为100 kHz时, 对脉宽142 ns、平均功率为1.66 W的种子光进行预放大和功率主放大, 最终得到平均功率120 W、脉宽180 ns、光谱宽度为0.67 nm的稳定脉冲激光输出。通过提升AOM性能、减小增益光纤长度等参数优化方式构建调Q光纤激光器, 能有效压缩谐振腔内脉冲宽度。
Abstract
In order to compress the pulse width of MOPA all-fiber Q-switched lasers, the basic parameters of the resonator were studied. Firstly, the expression of the pulse width was deduced according to the rate equation theory, and the relationship between the expression parameters and the pulse width was established by numerical solution. Then, the effects of gain fiber length, cavity output transmittance and Q-switch performance on the output pulse width of all-fiber Q-switched source were analyzed and the results were verified experimentally. Finally, an all-fiber Q-switched laser was constructed by optimizing the parameters. At the repetition frequency of 20 kHz, the seed laser output with pulse width of 54 ns and average power of 0.86 W was obtained. At the repetition frequency of 100 kHz, the seed light with the pulse width of 142 ns and the average power of 1.66 W was used to prevent large and main power amplification, and finally the stable pulse laser output with average power of 120 W, pulse width of 180 ns and spectral width of 0.67 nm was obtained. The Q-switched fiber lasers can be constructed by optimizing the AOM performance and reducing the length of the gain fiber to optimize the pulse width of the resonator.
参考文献

[1] LIMPERT J, HFER S, LIEM A, et al.. 100-W average-power, high-energy nanosecond fiber amplifier[J]. Appl. Phys. B: Lasers Opt., 2002, 75(4-5): 477-479.

[2] 楼祺洪, 赵宏明, 周军, 等. 声光调Q光纤激光器的窄脉冲输出[J]. 激光与光电子学进展, 2008, 45(2): 6-6.

    LOU Q H, ZHAO H M, ZHOU J, et al.. Narrow pulse output of acoustic optical fiber laser[J]. Laser Optoelectron. Prog., 2008, 45(2): 6-6. ( in Chinese)

[3] 楼祺洪. 高功率光纤激光器及其应用[M]. 合肥: 中国科学技术大学出版社, 2010.

    LOU Q H. High-power Fiber Laser and Its Applications[M]. Hefei: Press of University of Science and Technology of China, 2010. (in Chinese)

[4] 张培培, 张鹏, 黄榜才, 等. 高稳定性的全光纤化调Q脉冲光纤激光器研究[J]. 激光与红外, 2015(8): 902-906.

    ZHANG P P, ZHANG P, HUANG B C, et al.. Research on a high stability all-fiber Q-switched pulse fiber laser[J]. Laser and Infrared, 2015(8): 902-906. (in Chinese)

[5] 邹峰, 王兆坤, 王子薇, 等. 吉赫兹级窄线宽、高峰值功率纳秒光纤激光器[J]. 中国激光, 2016, 43(7): 28-33.

    ZHOU F, WANG Z K, WANG Z W, et al.. Gigahertz narrow-linewidth high-peak power nanosecond fiber laser[J]. Chin. J. Lasers, 2016, 43(7): 28-33. (in Chinese)

[6] 蔡波. 纳秒脉冲镱掺杂光纤激光器研究[D]. 长春: 长春理工大学, 2016.

    CAI B. Research on Nanosecond Pulse Yb3+-doped Fiber Laser[D]. Changchun: Changchun University of Science and Technology, 2016. (in Chinese)

[7] LI Z, GUO C, LI Q, et al.. 188 W nanosecond pulsed fiber amplifier at 1 064 nm[J]. Laser Phys., 2016, 26(7): 75103.

[8] 马春媚. 单频掺镱光纤激光振荡器及窄线宽纳秒光纤放大器研究[D]. 北京: 北京工业大学, 2016.

    MA C M. Research on Single Frequency Ytterbium Doped Fiber Laser Oscillator and Narrow Linewidth Nanosecond Fiber Amplifier Laser[D]. Beijing: Beijing University of Technology, 2016.( in Chinese)

[9] 欧阳德钦. 高功率脉冲掺铥光纤激光器及超连续谱光源研究[D]. 深圳: 深圳大学, 2015.

    OUYANG D Q. Study on High Power Pulsed Thulium Doped Fiber Laser and Supercontinuum Laser Source[D]. Shenzhen: Shenzhen University, 2015. (in Chinese)

[10] 解宇飞, 刘洪伟, 胡永祥. 船舶板材激光除锈工艺参数确定方法研究[J]. 中国激光, 2016, 43(4): 109-116.

    XIE Y F, LIU H W, HU Y X. Determining process parameters for laser derusting of ship steel plates[J]. Chin. J. Lasers, 2016, 43(4): 109-116. (in Chinese)

[11] 张鑫, 陈玉华. 各类型激光器在激光清洗技术应用中发展现状及展望[J]. 热加工工艺, 2016(8): 37-40.

    ZHANG X, CHEN Y H. Research progress and prospect of application of different types laser in laser cleaning technology[J]. Hot Working Technol., 2016(8): 37-40. (in Chinese)

[12] 张力程, 周浩. 激光清洗技术在一件汉代彩绘女陶俑保护修复中的应用[J]. 文物保护与考古科学, 2017, 29(2): 67-75.

    ZHANG L C, ZHOU H. Application of laser cleaning technology in the protection and repair of a painted female terracotta warriors in Han dynasty[J]. Sci. Conservat. Archaeol., 2017, 29(2): 67-75. (in Chinese)

[13] 张大勇, 张昆, 李尧, 等. 100 W全光纤化高重频窄脉宽光纤激光器[J]. 光子学报, 2016, 45(8): 99-103.

    ZHANG D Y, ZHANG K, LI Y, et al.. 100 W all-fiberized pulsed fiber laser with high repetition rate and narrow pulse duration[J]. Acta Photon. Sinica, 2016, 45(8): 99-103. (in Chinese)

[14] 杨亚婷, 胡贵军, 郭盟, 等. 驱动信号占空比对声光调Q脉冲光纤激光器输出脉冲重频的影响[J]. 光电子·激光, 2015, 26(10): 1849-1853.

    YANG Y T, HU G J, GUO M, et al.. Influence of the duty cycle of driving signal on the output pulse repetition frequency of an acousto-optic Q-switched pulsed fiber laser[J]. J. Optoelectron. Laser, 2015, 26(10): 1849-1853. (in Chinese)

[15] 郝海洋, 李莉, 杨亚婷, 等. 声光调Q光纤激光器输出脉冲多峰现象的实验研究[J]. 中国激光, 2016, 43(6): 32-37.

    HAO H Y, LI L, YANG Y T, et al.. Experimental research on multi-peak phenomenon of acousto-optic Q-switched fiber laser output pulse[J]. Chin. J. Lasers, 2016, 43(6): 32-37. (in Chinese)

[16] 徐珩. 高功率掺镱光纤激光器时域调制特性的研究[D]. 南京: 南京理工大学, 2016.

    XU H. Study on Time Modulation Characteristics of High Power Ytterbium-doped Fiber Laser[D]. Nanjing: Nanjing University of Science & Technology, 2016. (in Chinese)

[17] 杨亚婷. 基于声光调Q的脉冲光纤激光器研究[D]. 长春: 吉林大学, 2016.

    YANG Y T. Research of Pulsed Fiber Laser Based on Acoustic-optic Q-switching[D]. Changchun: Jilin University, 2017. (in Chinese)

[18] 胡浩伟. 单频纳秒脉冲掺镱光纤激光器及放大器的研究[D]. 北京: 北京工业大学, 2015.

    HU H W. Research on Single Frequency Nanosecond Pulse Yb-doped Fiber Laser and Amplifier[D]. Beijing: Beijing University of Technology, 2015. (in Chinese)

[19] 宁继平, 张伟毅, 尚连聚, 等. 掺镱包层光纤激光器的全光纤调Q技术[J]. 中国激光, 2008, 35(4): 483-487.

    NING J P, ZHANG W Y, SHANG L J, et al.. All-fiber Q-switched ytterbium-doped double-clad laser[J]. Chin. J. Lasers, 2008, 35(4): 483-487. (in Chinese)

[20] 黄琳. 1.06 μm调Q光纤激光器研究[D]. 成都: 电子科技大学, 2009.

    HUANG L. The Research on 1.06 μm Q-switched Ytterbium-doped Fiber Laser[D]. Chengdu: University of Electronic Science and Technology of China, 2009. ( in Chinese)

[21] 张文启. MOPA结构声光调Q掺镱全光纤激光器研究[D]. 北京: 北京工业大学, 2011.

    ZHANG W Q. Study on Acousto-optic Q-switched Yb-doped All-fiber Laser in Master Oscillator Power Amplifier Configuration[D]. Beijing: Beijing University of Technology, 2011. (in Chinese)

[22] 周炳坤. 激光原理[M]. 第七版. 北京: 国防工业出版社, 2014.

    ZHOU B K. Principle of Laser[M]. 7th ed. Beijing: National Defense Industry Press, 2014. (in Chinese)

曹康, 秦文斌, 葛廷武, 吴迪, 贾冠男, 闫岸如, 曹银花, 王智勇. 全光纤调Q激光器腔内脉宽压缩技术[J]. 发光学报, 2018, 39(6): 802. CAO Kang, QIN Wen-bin, GE Ting-wu, WU Di, JIA Guan-nan, YAN An-ru, CAO Yin-hua, WANG Zhi-yong. Internal Pulse Width Compression Technology of All-fiber Q-switched Laser[J]. Chinese Journal of Luminescence, 2018, 39(6): 802.

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