Chinese Journal of Lasers, Volume. 36, Issue 7, 1679(2009)

Overview on Laser Diode Pumped Solid-State Laser with Direct Pumping Scheme

He Kunna1,2、*, Wei Zhiyi1, Zhang Zhiguo1, and Gao Chunqing2
Author Affiliations
  • 1[in Chinese]
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    References(34)

    [4] [4] V. Lupei, G. Aka, D. Vivien. Quasi-three-level 946 nm CW laser emission of Nd∶YAG under direct pumping at 885 nm into the emitting level[J]. Opt. Commun., 2002, 204: 399~405

    [5] [5] R. Lavi, S. Jackel, Y. Tzuk et al.. Efficient pumping scheme for neodymium-doped materials by direct excitation of the upper lasing level[J]. Appl. Opt., 1999, 38(36): 7382~7385

    [6] [6] R. Newman. Excitation of the Nd3+ fluorescence in CaWO4 by recombination radiation in GaAs [J]. J. Appl. Phys., 1963, 34:437

    [7] [7] M. Ross. YAG laser operation by semiconductor laser pumping[J]. Proc. IEEE, 1968, 56: 196~197

    [8] [8] R. Lavi, S. Jackel. Thermally boosted pumping of neodymium lasers[J]. Appl. Opt., 2000, 39(18): 3093~3098

    [9] [9] S. Bjurshagen, R. Koch, F. Laurell. Quasi-three-level Nd∶YAG laser under diode pumping directly into the emitting level[J]. Opt. Commun., 2006, 261(1): 109~113

    [10] [10] T. Y. Fan. Heat generation in Nd∶YAG and Yb∶YAG[J]. IEEE J. Quantum Electron., 1993, 29(6): 1457~1459

    [11] [11] S. Goldring, R. Lavi, A. Tal et al.. Characterization of radiative and nonradiative processes in Nd∶YAG lasers by comparing direct and band pumping[J]. IEEE J. Quantum Electron., 2004, 40(4): 384~389

    [12] [12] Ichiro Shoji, Takunori Taira, Akio Ikesue. Thermally-induced-birefringence effects of highly Nd3+-doped Y3Al5O12 ceramic lasers[J]. Opt. Mater., 2007, 29(10): 1271~1276

    [13] [13] R. Lavi, S. Jackel, A. Tal et al.. 885 nm high-power diodes end-pumped Nd∶YAG laser[J]. Opt. Commun., 2001, 195(5-6): 427~430

    [14] [14] V. Lupei, N. Pavel, T. Taira. Basic enhancement of the overall optical efficiency of intracavity frequency-doubling devices for the 1 μm continuous-wave Nd∶Y3Al5O12 laser emission[J]. Appl. Phys. Lett., 2003, 83(18): 3653~3655

    [15] [15] V. Lupei, N. Pavel, T. Taira. Laser emission in highly doped Nd∶YAG crystals under 4F5/2 and 4F3/2 pumping[J]. Opt. Lett., 2001, 26(21): 1678~1680

    [16] [16] V. Lupei, A. Lupei, N. Pavel et al.. Comparative investigation of spectroscopic and laser emission characteristics under direct 885 nm pump of concentrated Nd∶YAG ceramics and crystals[J]. Appl. Phys. B, 2001, 73(7): 757~762

    [17] [17] V. Lupei, N. Pavel, T. Taira. 1064 nm laser emission of highly doped Nd∶yttrium aluminum garnet under 885 nm diode laser pumping[J]. Appl. Phys. Lett., 2002, 80(23): 4309~4311

    [18] [18] V. Lupei, A. Lupei, N. Pavel et al.. Laser emission under resonant pump in the emitting level of concentrated Nd∶YAG ceramics[J]. Appl. Phys. Lett., 2001, 79(5): 590~592

    [19] [19] M. Frede, R. Wilhelm, D. Kracht. 250 W end-pumped Nd∶YAG laser with direct pumping into the upper laser level[J]. Opt. Lett., 2006, 31(24): 3618~3619

    [20] [20] S. Goldring, R. Lavi. Direct pumping of Nd∶YAG at 946 nm[C], CLEO/Europe and IQEC 2007 Conference Digest,2007, paper CA_28

    [21] [21] V. Lupei, N. Pavel, T. Taira. Efficient laser emission in concentrated Nd laser materials under pumping into the emitting level[J]. Quantum Electron. Lett., 2002, 38(3): 240~245

    [22] [22] V. Lupei, N. Pavel, T. Taira. Highly efficient laser emission in concentrated Nd∶YVO4 components under direct pumping into the emitting level[J]. Opt. Commun., 2002, 201(4-6): 431~435

    [23] [23] V. Lupei, N. Pavel, Y. Sato et al.. Highly efficient 1063-nm continuous-wave laser emission in Nd∶GdVO4[J]. Opt. Lett., 2003, 28(23): 2366~2368

    [24] [24] Y. Sato, N. Pavel, T. Taira. Comparative study of Nd∶GdVO4 and Nd∶YVO4∶ laser oscillation under 808-nm and 879-nm pumping[C]. CLEO and IQEC 2004 Conference Digest, 2004, paper CThJJ7

    [25] [25] Y. Sato, T. Taira, N. Pavel et al.. Laser operation with near quantum-defect slope efficiency in Nd∶YVO4 under direct pumping into the emitting level[J]. Appl. Phys. Lett., 2003, 82(6): 844~846

    [26] [26] Cao Ning, Li Qinan, Zhao Yanying et al.. Efficient pumping scheme by direct excitation of upper laser level in Nd∶CNGG[J]. Chin. Phys. Lett., 2008, 25(11): 4016~4018

    [27] [27] Xu Changwen, Wei Zhiyi, He Kunna et al.. Nd∶YAG lasers operating at 1064 nm and 946 nm by direct pumping and thermally boosted pumping[J]. Chin. Phys. Lett., 2009, 26(1): 014213

    [28] [28] V. Lupei , N. Pavel, T. Taira. Highly efficient continuous-wave 946-nm Nd∶YAG laser emission under direct 885-nm pumping[J]. Appl. Phys. Lett., 2002, 81(15): 2677~2679

    [29] [29] Bjurshagen, S. Laurell, F. Koch et al.. 946-nm Nd∶YAG laser under ground-state direct diode-pumping at 869 nm[C]. CLEO 2005 Conference Digest, 2005, paper CMS4

    [30] [30] N. Pavel, V. Lupei, J. Saikawa et al.. Neodymium concentration dependence of 0.94-, 1.06- and 1.34-μm laser emission and of heating effects under 809- and 885-nm diode laser pumping of Nd∶YAG[J]. Appl. Phys. B, 2006, 82(4): 599~605

    [31] [31] N. Pavel, K. Lünstedt, K. Petermann et al.. Multipass pumped Nd-based thin-disk lasers: continuous-wave laser operation at 1.06 and 0.9 μm with intracavity frequency doubling[J]. Appl. Opt., 2007, 46(34): 8256~8263

    [32] [32] V. Lupei, G. Aka, D. Vivien. Enhanced fundamental and self-frequency-doubling laser emission efficiency in 4F3/2 directly pumped Nd-activated nonlinear crystals: The case of GdCa4O(BO3)3[J]. Appl. Phys. Lett., 2002, 81(5): 811~813

    [33] [33] V. Lupei. Efficiency enhancement and power scaling of Nd lasers[J]. Opt. Mater., 2003, 24(1-2): 353~368

    [34] [34] Sharone Goldring, Raphael Lavi. Nd∶YAG laser pumped at 946 nm[J]. Opt. Lett., 2008, 33(7): 669~671

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    He Kunna, Wei Zhiyi, Zhang Zhiguo, Gao Chunqing. Overview on Laser Diode Pumped Solid-State Laser with Direct Pumping Scheme[J]. Chinese Journal of Lasers, 2009, 36(7): 1679

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    Paper Information

    Category: reviews

    Received: Mar. 31, 2009

    Accepted: --

    Published Online: Jul. 16, 2009

    The Author Email: Kunna He (hekunna@aphy.iphy.ac.cn)

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