• Chinese Journal of Lasers
  • Vol. 47, Issue 3, 301002 (2020)
Wang Yongheng, Zhao Changming*, Cai Zitao, and Yao Ruiyu
Author Affiliations
  • School of Optics and Photonics, Beijing Institute of Technology, Beijing 100081, China
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    DOI: 10.3788/CJL202047.0301002 Cite this Article Set citation alerts
    Wang Yongheng, Zhao Changming, Cai Zitao, Yao Ruiyu. LD Pumped 1061 nm/1064 nm Dual-Wavelength Nd∶YAG Microchip Laser[J]. Chinese Journal of Lasers, 2020, 47(3): 301002 Copy Citation Text show less
    References

    [1] Danailov M B, Milev I Y. Simultaneous multiwavelength operation of Nd∶YAG laser[J]. Applied Physics Letters, 61, 746-748(1992).

    [2] Lee H C, Kim Y P. Simultaneous dual-wavelength oscillation at 1357 nm and 1444 nm in a Kr-flashlamp pumped Nd∶YAG laser[J]. Optics Communications, 281, 4455-4458(2008).

    [3] Yu H H, Zhang H J, Wang Z P et al. Dual-wavelength neodymium-doped yttrium aluminum garnet laser with chromium-doped yttrium aluminum garnet as frequency selector[J]. Applied Physics Letters, 94, 041126(2009).

    [4] Lu J, Ding J Y, He Y et al. High repetition rate sub-nanosecond dual-wavelength solid-state laser for airborne lidar[J]. Laser & Optoelectronics Progress, 55, 082804(2018).

    [5] Ma Y F, Shen Y J, Xu L et al. Dual-wavelength amplification properties of continuous-operation Yb∶YAG slab laser[J]. Chinese Journal of Lasers, 45, 0101006(2018).

    [6] Zhou R, Wen W, Cai Z et al. Efficient stable simultaneous CW dual-wavelength diode-end-pumped Nd∶YAG laser operating at 1.319 and 1.338 μm[J]. Chinese Optics Letters, 3, 597-599(2005). http://www.opticsjournal.net/Articles/Abstract?aid=OJ060606001292hOkQnT

    [7] Chen L J, Wang Z P, Zhuang S D et al. Dual-wavelength Nd∶YAG crystal laser at 1074 and 1112 nm[J]. Optics Letters, 36, 2554-2556(2011).

    [8] Zhang L, Wei Z Y, Feng B H et al. Simultaneous dual-wavelength Q-switched Nd∶YAG laser operating at 1.06 μm and 946 nm[J]. Optics Communications, 264, 51-54(2006).

    [9] Li C Y, Bo Y, Xu J L et al. Simultaneous dual-wavelength oscillation at 1116 and 1123 nm of Nd∶YAG laser[J]. Optics Communications, 284, 4574-4576(2011).

    [10] Abdul Ghani B, Hammadi M. Investigation of the simultaneous dual-wavelength emission of a Q-switched frequency doubled diode pumped Nd 3+∶YAG laser operating at 946 nm and 1064 nm[J]. Optik, 124, 622-626(2013).

    [11] Huang Y J, Tzeng Y S, Tang C Y et al. Efficient high-power terahertz beating in a dual-wavelength synchronously mode-locked laser with dual gain media[J]. Optics Letters, 39, 1477-1480(2014).

    [12] Wang X Z, Wang Z F, Bu Y K et al. A 1064- and 1074-nm dual-wavelength Nd∶YAG laser using a Fabry-Perot band-pass filter as output mirror[J]. IEEE Photonics Journal, 6, 1501607(2014).

    [13] Wang X Z, Yuan H Y, Wang M S et al. Continuous 1052, 1064 nm dual-wavelength Nd∶YAG laser[J]. Optics Communications, 376, 67-71(2016).

    [14] Lin Z, Huang X X, Lan J L et al. Efficient and compact diode-pumped Nd∶YAG lasers at 1073 and 1078 nm[J]. IEEE Photonics Journal, 8, 1500808(2016).

    [15] Liu Y, Zhong K, Mei J L et al. Compact and flexible dual-wavelength laser generation in coaxial diode-end-pumped configuration[J]. IEEE Photonics Journal, 9, 1500210(2017).

    [16] Singh S. Smith R G, van Uitert L G. Stimulated-emission cross section and fluorescent quantum efficiency of Nd 3+ in yttrium aluminum garnet at room temperature[J]. Physical Review B, 10, 2566-2572(1974).

    Wang Yongheng, Zhao Changming, Cai Zitao, Yao Ruiyu. LD Pumped 1061 nm/1064 nm Dual-Wavelength Nd∶YAG Microchip Laser[J]. Chinese Journal of Lasers, 2020, 47(3): 301002
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