浏览全部资源
扫码关注微信
北京交通大学 理学院 北京,100044
收稿日期:2013-11-13,
修回日期:2013-12-27,
网络出版日期:2014-01-24,
纸质出版日期:2014-04-03
移动端阅览
朱方玺, 郑义,. 掺杂光子晶体光纤产生光孤子所需泵浦功率的研究[J]. 发光学报, 2014,35(4): 496-500
ZHU Fang-xi, ZHENG Yi,. Theoretical Study of Pump Power Used to Obtain Optical Solitons in Doped Photonic Crystal Fiber[J]. Chinese Journal of Luminescence, 2014,35(4): 496-500
朱方玺, 郑义,. 掺杂光子晶体光纤产生光孤子所需泵浦功率的研究[J]. 发光学报, 2014,35(4): 496-500 DOI: 10.3788/fgxb20143504.0496.
ZHU Fang-xi, ZHENG Yi,. Theoretical Study of Pump Power Used to Obtain Optical Solitons in Doped Photonic Crystal Fiber[J]. Chinese Journal of Luminescence, 2014,35(4): 496-500 DOI: 10.3788/fgxb20143504.0496.
在光纤纤芯中掺入适量GeO
2
有利于增加纤芯非线性折射率,提高光纤的非线性系数。利用有限元法设计了一种带宽为1.45 m的宽反常色散掺杂光子晶体光纤,其光纤可以利用低泵浦功率产生任意波长的光孤子。分析结果显示,当脉冲脉宽
T
FWHM
取300 fs时,产生基阶光孤子需要的最高平均泵浦功率为0.001 695 W,而产生五阶光孤子需要的最高平均泵浦功率仅0.042 38 W。
The nonlinear refractive index and nonlinear coefficient of the fiber can be enhanced by doping GeO
2
into the fiber core. A special photonic crystal fiber for generating optical solitons is designed
via
the finite element method. Its bandwidth is 1.45 m around the anomalous dispersion regime. The optical solitons with any wavelength can be generated easily in this fiber at low pump power. The numerical results show that the highest average pump power used to obtain the fundamental soliton is 0.001 695 W when the pump pulse width
T
FWHM
is 300 fs
and it is only 0.042 38 W used to obtain the fifth-order solitons.
Pedersen M E V, Cheng J, Charan K, et al. Higher-order-mode fiber optimized for energetic soliton propagation[J]. Opt. Lett., 2012, 37(16):3459-3461. [2] Wang P, Tian B, Liu W J, et al. Bcklund transformation and N-soliton solutions for the cylindrical nonlinear Schrdinger equation from the diverging quasi-plane envelope waves[J]. Z. Naturforsch., A: Phys. Sci., 2012, 67(8):441-450. [3] Driben R, Malomed B A. Generation of tightly compressed solitons with a tunable frequency shift in Raman-free fibers[J]. Opt. Lett., 2013, 38(18):3623-3626. [4] Driben R, Malomed B A, Yulin A V, et al. Newton's cradles in optics: From N-soliton fission to soliton chains[J]. Phys. Rev. A, 2013, 87(6):063808-1-8. [5] Sang M H, Luo K J. Behavior of soliton in the neighborhood of zero-dispersion propagation in a single model optical fiber[J]. J. Jiangxi Norm. Univ.(江西师范大学学报), 1995, 19(3):226-231 (in Chinese). [6] Liu L, Meng X, Yin F, et al. Soliton self-frequency shift controlled by a weak seed laser in tellurite photonic crystal fibers[J]. Opt. Lett., 2013, 38(15):2851-2854. [7] Yu C X, Yuan J H, Shen X W. Recent progress of study on photonic crystal fiber[J]. Acta Opt. Sinica (光学学报), 2011, 31(9):332-336 (in Chinese). [8] Liu J, Yang C X, Claire G, et al. A novel photonic crystal fiber with high nonlinearity and flattened dispersion[J]. Acta Opt. Sinica (光学学报), 2006, 26(10):1569-1574 (in Chinese). [9] Wu T L, Chao C H. A novel ultraflattened dispersion photonic crystal fiber[J]. Photon. Technol. IEEE, 2005, 17(1):67-69. [10] Jiang Y J, Shi W H, Li P L, et al. A new type of THz photonic crystal fiber with super-flattened dispersion[J]. Acta Phys. Sinica (物理学报), 2012, 61(19):194210-1-5 (in Chinese). [11] Zhang S H, Yao J Q, Lu Y, et al. Highly nonlinear photonic crystal fibers with ultra-flattened chromatic dispersion and low confinement loss[J]. Laser & Optoelectron. Prog.(激光与光电子学进展), 2011, 48(12):47-51 (in Chinese). [12] Wang Y, Zhang X, Ren X, et al. Design and analysis of a dispersion flattened and highly nonlinear photonic crystal fiber with ultralow confinement loss[J]. Appl. Opt., 2010, 49(3):292-297. [13] Shi Z H, Yan K Z. The realization of photonic crystal fibers with closing to zero and flattened chromatic dispersion by changing the core diameter[J]. Acta Sinica Quant. Opt.(量子光学学报), 2007, 13(3):224-227 (in Chinese). [14] Lin H R, Qian S, Yang A X, et al. Effect of the fiber dispersion parameter on the performance of average-soliton transmission system[J]. Acta Opt. Sinica (光学学报), 2004, 24(9):1274-1278 (in Chinese). [15] Zhang Y N, Ren L Y, Gong Y K, et al. Design and optimization of highly nonlinear low-dispersion crystal fiber with high birefringence for four-wave mixing[J]. Appl. Opt., 2010, 49(16):3208-3214. [16] Agrawal G P. Nonlinear Fiber Optics, Fourth Edition and Applications of Nonlinear Fiber Optics[M]. 2nd ed. Beijing:Publishing House of Electronics Industry, 2010:6-12 (in Chinese). [17] Agrawal G P. Nonlinear Fiber Optics, Fourth Edition and Applications of Nonlinear Fiber Optics [M]. 2nd ed. Beijing:Publishing House of Electronics Industry, 2010:91-101 (in Chinese).
0
浏览量
207
下载量
0
CSCD
关联资源
相关文章
相关作者
相关机构