• Acta Photonica Sinica
  • Vol. 45, Issue 7, 70714001 (2016)
YAO Yu-cheng1、2、*, LIU Dan-lin1, HUANG Chu-yun1、2, XU Guo-wang1、2, and WANG Bei1、2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    DOI: 10.3788/gzxb20164507.0714001 Cite this Article
    YAO Yu-cheng, LIU Dan-lin, HUANG Chu-yun, XU Guo-wang, WANG Bei. Crystal Thermal Effect Simulation of Tm:YAG Laser[J]. Acta Photonica Sinica, 2016, 45(7): 70714001 Copy Citation Text show less
    References

    [1] LIU Jiang, LIU Kun, TAN Fang-zhou, et al. High power thulium doped all fiber super fluorescent sources[J].IEEE J Quantum Electron, 2014, 20(5): 497-502.

    [2] TANG Yu-long, XU Jian-qiu. High-power pulsed thulium fiber oscillator modulated by stimulated Brillouin scattering[J]. Applied Physics Letters, 2014,104(1): 0111034.

    [3] WAN P, YANG L M, LIU J. High pulse energy 2um femtosecond fiber laser[J]. Optics Express, 2013, 21(2): 1798-1803.

    [4] LIN Zun-qi, CHEN Wei-biao, LOU Qi-hong, et al. Comments on some important progress of laser in recent years in China[J]. China Science: Technology Science, 2013, 43(9): 961-978.

    [5] MACKENZIE J I, LI Cheng, SHEPERD D P. Modeling of high power continuous-wave Tm:YAG side-pumped double-clad waveguide lasers[J]. IEEE Journal of Quantum Electron, 2002, 38:222-230.

    [6] MARIO W K, MATHIAS W, HANNES C. Current evidence of transurethral Ho:YAG and Tm:YAG treatment of bladder cancer[J]. World Journal of Urology, 2015, 33: 571–579.

    [7] LAI K S, XIE W J, WU R F, et al. A 150 W 2-micron diode-pumped Tm:YAG laser[J]. Optical Society of America, 2002, 68: 535–539.

    [8] HONEA E C, BEACH R J, SUTTON S B, et al. 115-W Tm:YAG diode-pumped solid-state laser[J]. IEEE Journal of Quantum Electron, 2000, 33(9): 1592–1600.

    [9] CAO D, PENG Q, DU S, et al. A 200W diode side- pumped CW 2um Tm:YAG laser with water cooling at 8℃[J]. Applied Physics B, 2011, 103: 83-88.

    [10] WANG Cai-li, DU Shi-feng, NIU Yan-xiong, et al. Wavelength switchable high power diode-side pumped rod Tm:YAG Laser around 2μm[J]. Optics Express, 2013, 21(6): 7156-7161.

    [11] ZHANG Chao, DU Shi-feng, NIU Yan-xiong, et al. A compact high power laser-diode side-pumped Tm, Ho:YAG laser nearly at room temperature with intracavity Tm:YAG laser[J]. China Physics Letter, 2014, 31(4): 044201-3.

    [12] LIN Jiang-uo, TAO Yan, LIANG Jing-tao, et al. Measurement of output characteristics of Tm:YAG laser at 25–300K[J]. Optics Communications, 2015, 334:118–121.

    [13] YAO Yu-cheng, XU Shao-gang, HUANG Chu-yun, et al.Experimental study on high-power thulium laser[J]. Laser Journal, 2015, 36(6): 27-29.

    [14] LIU Xuan, HUANG Hai-tao, ZHU He-yuan, et al. A modified model for the LD pumped 2μm Tm:YAG laser: Thermal behavior and laser performance[J]. Optics Communications, 2014, 332: 332–338.

    [15] ZHANG Xiao-long, SHEN Jin-hua, CAI De-fang, et al. Study of temperature distribution and deformation of the end-face in end-pumped[J]. Acta Photonica Sinica, 2008, 37(3):425-429.

    [16] YANG Huo-mu, FENG Guo-ying, LI Wei, et al. Calculation of 3D thermal stress distribution of diode-end-pumped composite Nd:YAG rod[J]. Infrared and Laser Engineering, 2008, 3(37): 467-471.

    [17] Ichiro takeuchi thermal stress[M].Beijing: Science Press, 1997.

    [18] KOECHNER W. Solid-state laser engineering[M]. Springer, 2006.

    YAO Yu-cheng, LIU Dan-lin, HUANG Chu-yun, XU Guo-wang, WANG Bei. Crystal Thermal Effect Simulation of Tm:YAG Laser[J]. Acta Photonica Sinica, 2016, 45(7): 70714001
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