• Infrared and Laser Engineering
  • Vol. 49, Issue 7, 20200112 (2020)
Pengquan Zhang1, Tiejun Du1、*, and Yijun Shi2
Author Affiliations
  • 1杭州电子科技大学 电子信息学院,浙江 杭州 310018
  • 2天津可宏振星科技有限公司,天津 300192
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    DOI: 10.3788/IRLA20200112 Cite this Article
    Pengquan Zhang, Tiejun Du, Yijun Shi. Single-frequency laser based on single-pass QPM frequency doubling of Tm-doped fiber MOPA[J]. Infrared and Laser Engineering, 2020, 49(7): 20200112 Copy Citation Text show less
    References

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    [2] R Yan, X Yu, D Chen. The thermal effect in diode-end-pumped continuous-wave 914-nm Nd: YVO4 laser. Chinese Physics B, 21, 350-356(2012).

    [3] 王垚廷, Yaoting Wang, Qianqian Zhou, 周倩倩, 李渊骥, Yuanji Li. All-solid-state CW Nd: YAG blue laser of single frequency operation with 770 mW output power. Chinese Journal of Lasers, 36, 1714-1718(2009).

    [4] F Li, Z Shi, Y Li. Tunable single-frequency intracavity frequency-doubled Ti: Sapphire laser around 461 nm. Chinese Physics Letters, 28, 124205(2011).

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    [8] K Devi, S C Kumar, M Ebrahimzadeh. 13.1 W, high-beam-quality, narrow-linewidth continuous-wave fiber-based source at 970 nm. Optics Express, 19, 11631-11637(2011).

    [9] Ganija M, Simakov N, Hemming A, et al. Second harmonic generation using a monolithic, linearly polarized thulium doped fiber laser[C] ACOFT, 2016.

    [10] B Zhang, Z Jiao, B Wang. Efficient second-harmonic generation from polarized thulium-doped fiber laser with periodically poled MgO: LiNbO3. Optics & Laser Technology, 69, 60-64(2015).

    [11] Creeden D, Setzler S D. 486 nm blue laser operating at 500 kHz pulse repetition frequency[C] SPIE LASE, 2016, 11: 97289729.

    [12] G K Samanta, S C Kumar, K Devi. Multicrystal, continuous-wave, single-pass second-harmonic generation with 56% efficiency. Optics Letters, 35, 3513-3515(2010).

    [13] S S Sané, S Bennetts, J E Debs. 11 W narrow linewidth laser source at 780 nm for laser cooling and manipulation of Rubidium. Optics Express, 20, 8915-8919(2012).

    [15] Smith A V. Software SNLO version 67[DBOL]. http:www.asphotonics.comproductssnlo

    [16] G D Boyd, D A Kleinman. Parametric interaction of focused Gaussian light beams. Journal of Applied Physics, 39, 3597-3639(1968).

    CLP Journals

    [1] Yajun Wang, Li Gao, Xiaoli Zhang, Yaohui Zheng. Recent development of low noise laser for precision measurement (Invited)[J]. Infrared and Laser Engineering, 2020, 49(12): 20201073

    Pengquan Zhang, Tiejun Du, Yijun Shi. Single-frequency laser based on single-pass QPM frequency doubling of Tm-doped fiber MOPA[J]. Infrared and Laser Engineering, 2020, 49(7): 20200112
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