光学学报, 2011, 31 (8): 0806010, 网络出版: 2011-07-29   

双包层色散平坦光子晶体光纤的数值模拟与分析

Numerical Simulation and Analysis of Double Cladding Photonic Crystal Fiber with Flattened Dispersion
王丹 1,*郑义 2
作者单位
1 晋中学院物理与电子工程学院, 山西 晋中 030600
2 北京交通大学激光研究所, 北京 100044
摘要
光纤色散会使脉冲展宽,从而导致误码,在通信网中这是必须避免的一个问题。运用有限元法,在考虑石英基质材料色散的前提下,数值模拟了呈圆形排列的双包层光子晶体光纤的场分布、基模有效折射率和色散特性。结果表明,小空气孔间距和直径不变时,大空气孔与第一圈小孔的的间距和大空气孔的直径对色散曲线的走向起决定性作用。如同某些色散补偿光纤一样,有效模折射率会在某个波长处过渡,从而实现平坦色散,如当直径d1=3.1 μm,d2=1 μm,间距Λ1=5 μm,Λ2=4 μm时,在1.22~1.6 μm超宽波长范围内,其色散值Dmax-Dmin<4 ps/(nm·km)。
Abstract
Dispersion of fiber may broaden the pulse width and lead to error, which must be avoided in optical communications. Using the finite element method (FEM) and considering the material dispersion of SiO2, the mode field, the effective index of fundamental mode and the dispersion property of double-cladding photonic crystal fiber (PCF) with circular arrangement are numerically simulated. Results show that the distance between large air holes and small air holes of the first layer and the diameter of large air holes determine the shape of dispersion curve when the distance and diameter of small air holes are unchanged. As some dispersion-compensating fiber, the effctive mode refractive index has a transition at a wavelength,thus flattened dispersion can be realized. For example, when diameter d1=3.1 μm, d2=1 μm, distance Λ1=5 μm and Λ2=4 μm, within the wavelength range of 1.22~1.6 μm, the difference between the maximun and minimum of dispersion is less than 4 ps/(nm·km).
参考文献

[1] 李曙光, 刘晓东, 侯蓝田. 接近于零色散的色散平坦光子晶体光纤的数值模拟与分析 [J]. 中国激光, 2004, 31(6): 713~717

    Li Shuguang, Liu Xiaodong, Hou Lantian. Numerical simulation and analysis on photonic crystal fiber with closing to zero and flattened chromatic dispersion[J]. Chinese J. Lasers, 2004, 31(6): 713~717

[2] Chi Hao, Zeng Qingji, Zhao Huandong et al.. Analysis on dispersion characteristics of photonic crystal fiber[J]. J. Infrared Millim. Waves, 2003, 22(2): 149~153

[3] 刘洁, 杨昌喜, Claire Gu 等.一种新型高非线性色散平坦光子晶体光纤结构[J]. 光学学报, 2006, 26(10): 1569~1574

    Liu Jie, Yang Changxi,Claire Gu et al.. A novel photonic crystal fiber with high nonlinearity and flattented dispersion [J]. Acta Optica Sinica, 2006, 26(10): 1569~1574

[4] 戴能利, 李洋, 彭景刚 等. 色散平坦光子晶体光纤的研究进展 [J]. 激光与光电子学进展, 2011, 48(1): 010602

    Dai Nengli, Li Yang, Peng Jinggang et al.. Development of dispersion-flattened photonic crystal fibers [J]. Laser & Optoelectronics Progress, 2011, 48(1): 010602

[5] 武劲青, 薛文瑞, 周国生 等. 方形渐变空气孔微结构光纤的色散特性分析[J]. 光学学报, 2005, 25(2): 174~178

    Wu Jingqing, Xue Wenrui, Zhou Guosheng. Dispersion property analysis of square-lattice varying microstructured optical fiber [J]. Acta Optica Sinica, 2005, 25(2): 174~178

[6] 刘兆伦, 王伟, 赵兴涛 等. 宽带色散平坦光子晶体光纤的优化设计与特性分析 [J]. 半导体光电, 2007, 28(1): 104~107

    Liu Zhaolun, Wang Wei, Zhao Xingtao et al.. Modified design and characteristics analysis of broadband flat dispersion photonic crystal fiber [J]. Semiconductor Optoelectronics, 2007, 28(1): 104~107

[7] 郭丽霞, 武延荣, 薛文瑞 等. 复合六边形空气孔格点光子晶体光纤的色散特性分析[J]. 光学学报, 2007, 27(5): 935~939

    Guo Lixia, Wu Yanrong, Xue Wenrui et al.. Dispersion properties of photonic crystal fiber with composite hexagonal air hole lattice [J]. Acta Optica Sinica, 2007, 27(5): 935~939

[8] 苑金辉, 侯蓝田, 周桂耀 等.一种阶梯结构的色散平坦光子晶体光纤的研究[J]. 光学学报, 2008, 28(6): 1167~1171

    Yuan Jinhui, Hou Lantian, Zhou Guiyao et al.. Investigation of a step-structure photonic crystal fiber with flattented dispersion [J]. Acta Optica Sinica, 2008, 28(6): 1167~1171

[9] 侯宇, 周桂耀, 侯蓝田 等. 八边形双包层光子晶体光纤色散特性分析[J]. 中国激光, 2010, 37(4): 1068~1072

    Hou Yu, Zhou Guiyao, Hou Lantian et al.. Analysis of dispersion properties of octagonal structural photonic crystal fiber with double cladding [J]. Chinese J. Lasers, 2010, 37(4): 1068~1072

[10] Guo Yuan, Ruan Shuangchen. Analysis on the dispersion properties of photonic crystal fiber with an air-hole defect core [J]. J. Shenzhen University Science and Engineering, 2010, 27(4): 386~390

[11] 胡明列, 王清月, 栗岩锋. 微结构光纤的有限元分析计算法 [J]. 中国激光, 2004, 31(11): 1337~1342

    Hu Minglie, Wang Qingyue, Li Yanfeng. Analysis of the microstructure fiber by the finite element method [J]. Chinese J. Lasers, 2004, 31(11): 1337~1342

[12] A. W. Snyder, J. D. Love. Optical Waveguide Theory[M]. London: Springer, 1983

[13] 吴重庆. 光波导理论[M]. 北京:清华大学出版社, 2000

    Wu Chongqing. Optical Waveguide Theory[M].Beijing:Tsinghua University Press, 2000

王丹, 郑义. 双包层色散平坦光子晶体光纤的数值模拟与分析[J]. 光学学报, 2011, 31(8): 0806010. Wang Dan, Zheng Yi. Numerical Simulation and Analysis of Double Cladding Photonic Crystal Fiber with Flattened Dispersion[J]. Acta Optica Sinica, 2011, 31(8): 0806010.

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