承载多轨道角动量模式传输的光子晶体光纤设计

Xizheng Ke, Shasha Wang
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引用次数: 7

摘要

对于传统的圆形气孔光子晶体光纤,在光纤包层上增加了矩形气孔。内部矩形气孔的周期性排列使光纤结构能够更好地匹配涡旋光束的环形模场分布。采用COMSOL Multiphysics 5.4有限元软件对光纤结构进行了分析计算,分析了光纤的色散、约束损耗、有效模面积和非线性系数等特性。结果表明,该光子晶体光纤结构能够在1.15 ~ 2.0 μm (850 nm)波长范围内携带50个轨道角动量(OAM)模式。矢量模式之间的有效折射率差Δneff可达1 × 10-3,较大的折射率差可以有效地分离矢量模式,提高OAM模式的传输性能。此外,该光纤在850 nm波长范围内具有低阶模色散分布平坦、约束损耗低于10-9 dB·m-1、有效模场面积大、非线性系数小等性能。因此,这种光纤结构可以应用于光纤复用OAM的大容量通信系统。此外,这种光纤结构的良好特性对涡旋光束在光纤中的传输具有重要意义。
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Design of Photonic Crystal Fiber Capable of Carrying Multiple Orbital Angular Momentum Modes Transmission
For the traditional photonic crystal fibers with circular air holes, rectangular air holes are added to the fiber cladding. The periodic arrangement of the inner rectangular air holes allows the fiber structure to better match the annular mode field distribution of the vortex beam. The fiber structure was analyzed and calculated by COMSOL Multiphysics 5.4 finite element software, and the characteristics of fiber were analyzed, such as the dispersion, confinement loss, effective mode area and nonlinear coefficient. The results reveal that the photonic crystal fiber structure capable of carrying 50 orbital angular momentum (OAM) modes at the wavelength of 1.15 to 2.0 μm (850 nm). The effective refractive index difference Δneff between vector modes can reach 1 × 10-3, and larger difference can effectively separate the vector modes and improve the transmission performance of OAM modes. Moreover, the fiber has good performance, such as flat dispersion distribution of the low-order modes, low confinement loss below 10-9 dB·m-1, large effective mode field area and small nonlinear coefficient in the 850 nm wavelength range. Therefore, this fiber structure can be applied to the high-capacity communication system of fiber multiplexing OAM. In addition, the good characteristics of this fiber structure are of great significance for the transmission of vortex beam in fiber.
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