Chinese Journal of Lasers, Volume. 36, Issue s1, 353(2009)
Supercontinuum Generation Using 120 fs Femtosecond Pulse Laser in a Dispersion Flattened Photonic Crystal Fiber
[1] [1] I. Hartl, X. D. Li, C. Chudoba et al.. Ultrahigh-resdution optical coherence tomography using continuum generation in an air-silica microstructure optical fiber[J]. Opt. Lett., 2008, 26:608
[2] [2] S. A. Diddams, K. J. Jones et al.. Direct link between microwave and optical frequencies with a 300 THz ferntosecond laser comb [J]. Phys. Rev. Lett., 2000, 84: 5102
[3] [3] Z.Yusoff, P.Petropoulos, K.Furusawa et al.. A 36-channel ×10 GHz spectrally sliced pulse source based on super continuum generation in normally dispersive highly nonlinear holey fiber[J]. IEEE Photon. Technol. Lett., 2003,15: 1689
[4] [4] G. P. Agrawal. Nonlinear Fiber Optics[M]. 2nd ed., Academic Press, San Diego,1995
[5] [5] C. Lin, R. H. Stolen. New nanosecond continuum for excited-state spectroscopy[J]. App. Phys. Lett. 1976, 28 : 216~
[6] [6] K. Mori, H. Takara, S. Kawanishi et al.. Flatly broadened supercontinuum spectrum generated in a dispersion decreasing fiber with convex dispersion profile [J]. Electron. Lett., 1997, 33(21): 1806~1807
[7] [7] H. Sone, T. Kawano, M. Imai et al.. Numerical analysis of supercontinuum generation in a dispersion flattened/decreasing fiber [C]. Proc of APCC/ OECC′99, 1999. C2S2A: 357~3606
[9] [9] Chow K. K., Takushima Y., Lin C. et al.. Flat super-continuum generation based on normal dispersion nonlinear photonic crystal fibre[J]. Electron. Lett., 2006, 42(17): 989~990
[10] [10] J. Y. Y. Leong, P. Petropoulos, J. H. V. Price et al.. High-nonlinearity dispersion-shifted lead-silicate holey fibers for efficient 1-μm pumped supercontinuum generation[J]. J. Lightwave Techno., 2006, 24(1): 183~190
Get Citation
Copy Citation Text
Wang Qiuguo, Zhang Hu, Zhang Xia, Li Wei, Yang Bojun. Supercontinuum Generation Using 120 fs Femtosecond Pulse Laser in a Dispersion Flattened Photonic Crystal Fiber[J]. Chinese Journal of Lasers, 2009, 36(s1): 353