[1] Govind P Agrawal. Nonliner Fiber Optics Theory and Application[M]. Beijing: Publishing House of Electronics Industry, 2010.
[2]
[3]
[4] Dudley J M, Taylor J R. Supercontinuum Gegeration in Optical Fibers [M]. Britain: Cambridge University, 2010.
[5]
[6] Limpert J H, Fer S, Liem A, et al. 100 W average power, high energy nanosecond fiber amplifier [J]. A pplied Physics B, 2002, 75(4): 477-479.
[7] A Tnnermann, T Schreiber, J. Limpert. High power fiber lasers and amplifiers[J]. Appl Opt, 2010, 49(25): F71-78 .
[8]
[9] Dudley J M, Genty G, Coen S. Super-continuum generation in photonic crystal fiber [J]. Rev Mod Phys, 2006, 78 (4):1135-1184.
[10]
[11]
[12] Cumberland B A, Travers J C, Popov S V, et al. 29 W high power CW super-continuum source[J]. Opt Express, 2008, 16(8): 5954-5962.
[13] Agrawal Govind P. Nonliner fiber optics theory and application (Chinese version), 2010: 110-116.
[14]
[15]
[16] Zhao Lei, Wang Jianjun, Lin Honghuan, et al. Experimental research of high conversion efficiency all fiber super-continuum source[J]. High Power Laser and Particle Beams, 2009, 21(8): 1143-1147. (in Chinese)
[17]
[18] Wang Yanbin, Xiong Chunle, Hou Jing ,et al.. Modeling of four-wave mixing and super-continuum with long pulses in photonic crystal fibers[J]. Acta Phys, 2011, 60(1): 014201.
[19] Qin Aijun, Wang Zefeng, Hou Jing, et al. Coherence properties of the supercontinuum generated in anomalous dispersion region of photonic crystal fibers[J]. Acta Phys, 2012, 61(12): 124211.