Chinese Journal of Lasers, Volume. 41, Issue 1, 102001(2014)

Cryogenic Operation of Tm:YAG Laser Based on Pulse Tube Cooler

Zhang Bin1,2、*, Li Jianguo1, and Cai Jinghui1
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
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    References(38)

    [2] [2] D Cao, Q Peng, S Du, et al.. A 200 W diode-side-pumped CW 2 μm Tm:YAG laser with water cooling at 8 ℃[J]. Appl Phys B, 2011, 103(1): 83-88.

              D Cao, Q Peng, S Du, et al.. A 200 W diode-side-pumped CW 2 μm Tm:YAG laser with water cooling at 8 ℃[J]. Appl Phys B, 2011, 103(1): 83-88.

    [3] [3] P B Meng, B Q Yao, G Li, et al.. Comparative investigation of efficient diode-pumped c-cut Tm:YAP laser emitting at 1.94 and 1.99 μm[J]. Laser Physics, 2012, 22(2): 351-354.

              P B Meng, B Q Yao, G Li, et al.. Comparative investigation of efficient diode-pumped c-cut Tm:YAP laser emitting at 1.94 and 1.99 μm[J]. Laser Physics, 2012, 22(2): 351-354.

    [4] [4] Zhang Xinlu, Wang Yuezhu, Yao Baoquan. Theoretical investigation of a laser diode-pumped quasi-three-level 2 μm (Tm, Ho):YLF laser[J]. Acta Optica Sinica, 2004, 24(6): 787-792.

              Zhang Xinlu, Wang Yuezhu, Yao Baoquan. Theoretical investigation of a laser diode-pumped quasi-three-level 2 μm (Tm, Ho):YLF laser[J]. Acta Optica Sinica, 2004, 24(6): 787-792.

    [5] [5] Zhang Xiaofu, Xu Yiting, Li Chengming, et al.. A continuous-wave diode-side pumped Tm:YAG laser with output 51 W[J]. Chin Phys Lett, 2008, 25(10): 3673-3675.

              Zhang Xiaofu, Xu Yiting, Li Chengming, et al.. A continuous-wave diode-side pumped Tm:YAG laser with output 51 W[J]. Chin Phys Lett, 2008, 25(10): 3673-3675.

    [6] [6] Chunting Wu, Yonlun Ju, Yufeng Li, et al.. Diode-end-pumped composite Tm:YAG rod with undoped ends at room temperature[J]. Chin Opt Lett, 2008, 6(8): 594-596.

              Chunting Wu, Yonlun Ju, Yufeng Li, et al.. Diode-end-pumped composite Tm:YAG rod with undoped ends at room temperature[J]. Chin Opt Lett, 2008, 6(8): 594-596.

    [8] [8] C Bolling, W A Clarkson, R A Hayward, et al.. Efficient high-power Tm:YAG laser at 2 μm, end-pumped by a diode bar[J]. Opt Commun, 1998, 154(1-3): 35-38.

              C Bolling, W A Clarkson, R A Hayward, et al.. Efficient high-power Tm:YAG laser at 2 μm, end-pumped by a diode bar[J]. Opt Commun, 1998, 154(1-3): 35-38.

    [9] [9] Li Cheng, Song Jie, Shen Deyuan, et al.. Diode-pumped high-efficiency Tm:YAG lasers[J]. Opt Express, 1999, 4(1): 12-18.

              Li Cheng, Song Jie, Shen Deyuan, et al.. Diode-pumped high-efficiency Tm:YAG lasers[J]. Opt Express, 1999, 4(1): 12-18.

    [10] [10] K S Lai, P B Phua, R F Wu, et al.. 120-W continuous-wave diode-pumped Tm:YAG laser[J]. Opt Lett, 2000, 25(21): 1591-1593.

              K S Lai, P B Phua, R F Wu, et al.. 120-W continuous-wave diode-pumped Tm:YAG laser[J]. Opt Lett, 2000, 25(21): 1591-1593.

    [12] [12] Z Zhang, N J Ruan, F Zhou, et al.. High power continuous wave Tm:YAP laser dual-end-pumped by laser diode at 795 nm[J]. Laser Physics, 2011, 21(6): 1078-1080.

              Z Zhang, N J Ruan, F Zhou, et al.. High power continuous wave Tm:YAP laser dual-end-pumped by laser diode at 795 nm[J]. Laser Physics, 2011, 21(6): 1078-1080.

    [15] [15] J Liang, Y Zhou, W Zhu, et al.. Study on miniature pulse tube cryocooler for space application[J]. Cryogenics, 2000, 40(3): 229-233.

              J Liang, Y Zhou, W Zhu, et al.. Study on miniature pulse tube cryocooler for space application[J]. Cryogenics, 2000, 40(3): 229-233.

    [16] [16] Yang Luwei. Progress of stirling-type high frequency pulse tube coolers and development of prototypes driven by commercial linear compressors[J]. Cryogenics and Superconductivity, 2003, 31(3): 1-6.

              Yang Luwei. Progress of stirling-type high frequency pulse tube coolers and development of prototypes driven by commercial linear compressors[J]. Cryogenics and Superconductivity, 2003, 31(3): 1-6.

    [17] [17] Chen Guobang, Tang Ke. Principles of Micro-Cryocoolers[M]. Beijing: Science Press, 2009. 177-180.

              Chen Guobang, Tang Ke. Principles of Micro-Cryocoolers[M]. Beijing: Science Press, 2009. 177-180.

    [18] [18] Gao Chengming, He Yaling, Chen Zhongxin, et al.. Configuration, theory and application progress of pulse tube cryocoolers[J]. Cryogenics and Superconductivity, 2001, 29(2): 12-20.

              Gao Chengming, He Yaling, Chen Zhongxin, et al.. Configuration, theory and application progress of pulse tube cryocoolers[J]. Cryogenics and Superconductivity, 2001, 29(2): 12-20.

    [19] [19] Wang Xilong, Wang Guoping, Cai Jinghui, et al.. Experimental measurements of flow characteristics in a high frequency pulse tube cooler[J]. J Engineering Thermophysics, 2005, 26(3): 365-368.

              Wang Xilong, Wang Guoping, Cai Jinghui, et al.. Experimental measurements of flow characteristics in a high frequency pulse tube cooler[J]. J Engineering Thermophysics, 2005, 26(3): 365-368.

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    Zhang Bin, Li Jianguo, Cai Jinghui. Cryogenic Operation of Tm:YAG Laser Based on Pulse Tube Cooler[J]. Chinese Journal of Lasers, 2014, 41(1): 102001

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    Paper Information

    Category: Laser physics

    Received: Aug. 9, 2013

    Accepted: --

    Published Online: Jan. 9, 2014

    The Author Email: Bin Zhang (zhangbin86.32@163.com)

    DOI:10.3788/cjl201441.0102001

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