Chinese Journal of Lasers, Volume. 40, Issue s1, 102003(2013)
All-Solid-State Single-Frequency Yb:GdCOB Microchip Laser with Fiber Coupled Output
[1] [1] P Nachman, J Munch, R Yee. Diode-pumped, frequency-stable, tunable, continuous-wave Ndglass laser[J]. IEEE J Quantum Electron, 1990, 26(2): 317-322.
[2] [2] K Wallmeroth, P Peuser. High power, CW single-frequency, TEM00, diode-laser-pumped Nd:YAG laser[J]. Electron Lett, 1988, 24(17): 1086-1088.
[3] [3] V Evtuhov, A E Siegman. A “twisted-mode” technique for obtaining axially uniform energy density in a laser cavity[J]. Appl Opt, 1965, 4(1): 142-143.
[4] [4] J Zayhowski. The effects of spatial hole burning and energy diffusion on the single-mode operation of standing-wave lasers[J]. IEEE J Quantum Electron, 1990, 26(12): 2052-2057.
[13] [13] G J Spuhler, R Paschotta, M P Kullberg, et al.. A passively Q-switched YbYAG microchip laser[J]. Applied Physics B, 2001, 72(3): 285-287.
[14] [14] M Martrou, F Mougel, G Aka, et al.. Laser performance of an ytterbium doped new single crystal Yb3+Ca4GdO(BO3)3(Yb:GdCOB) under end pumped titanium sapphire[J]. OSA Topical Conference on Advanced Solid State Lasers, 158/AMF1-1, 1998.
[15] [15] F Druon, S Chenais, F Balembois, et al.. High-power diode-pumped Yb:GdCOB laser: from continuous-wave to femtosecond regime[J]. Optical Material, 2002, 19(1): 73-80.
[16] [16] Cao Yi, Liu Jia, Liu Jiang, et al.. Passively Q-switched Nd:YAG microchip laser based on graphene[J]. Chinese J Lasers, 2012, 39(2): 0202009.
[17] [17] W Koechner. Solid-State Laser Engineering[M]. Sun Wen Transl.. Beijing: Science Press, 2002. 366-367.
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Jin Dongchen, Yu Haohai, Shi Hongxing, Wang Ke, Zhang Huaijin, Wang Pu. All-Solid-State Single-Frequency Yb:GdCOB Microchip Laser with Fiber Coupled Output[J]. Chinese Journal of Lasers, 2013, 40(s1): 102003
Category: Laser physics
Received: Feb. 1, 2013
Accepted: --
Published Online: Dec. 24, 2013
The Author Email: Dongchen Jin (jindongchen1989@gmail.com)