[1] Ma Xiaoyu, Wang Jun, Liu Suping. Present situation of investigations and applications in high power semiconductor lasers[J]. Infrared and Laser Engineering, 2008, 37(2): 189-194. (in Chinese)
[2]
[3] Krupke W F, Beach R J, Kanz V K, et al. Resonance transition 795 nm rubidium laser[J]. Opt Lett, 2003, 28(23): 2336-2338.
[4]
[5]
[6] Page R H, Beach R J, Kanz V K, et al. First demonstration of a diode-pumped gas(alkali vapor) laser[C]//Lasers and Electro-Optics(CLEO), 2005: CMAA1.
[7]
[8] Zweiback J, Komashko A, Krupke W F. Alkali vapor lasers[C]//SPIE, 2010, 7581: 75810G-1-75810G-5.
[9]
[10] Zheng Y J, Niigaki M, Miyajima H, et al. High-efficiency 894-nm laser emission of laser-diode-bar-pumped cesium-vapor laser[J]. Appl Phy Exp, 2009, 2: 032501-1.
[11] Theoretical analysis of high-power diode laser pumped alkali vapor laser[J]. Infrared and Laser Engineering, 2007, 36(s): 85-88. (in Chinese)
[12]
[13] Yang Zining, Wang Hongyan, Hua Weihong, et al. Diode-pumped rubidium vapor laser[J]. High Power Laser and Particle Beams, 2011, 23(9): 2273-2274. (in Chinese)
[14]
[15]
[16] Xu Cheng, Tan Rongqing, Li Zhiyong, et al. Diode pumped rubidium vapor laser with linearly polarized fundamental mode output[J]. High Power Laser and Particle Beams, 2012, 24(10): 2269-2270. (in Chinese)
[17] Beach R J, Krupke W F, Kanz V K, et al. End-pumped continuous-wave alkali vapor lasers: experiment, model, and power scaling[J]. J Opt Soc Am B, 2004, 21(12): 2151-2163.
[18]
[19] Hager G, McIver J, Hostutler D, et al. A quasi-two level analytic model for end pumped alkali metal vapor laser[C]//SPIE, 2008, 7005: 700528.
[20]
[21] Wu S S Q, Soules T F, Page R H, et al. Hydrocarbon-free resonance transition 795 nm rubidium laser[C]//SPIE, 2008, 6874: 68740E1.
[22]