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Optimal Confinement Loss Reduction in Photonic Crystal Fiber with Flattened Dispersion

机译:具有平坦色散的光子晶体光纤的最佳限制损耗降低

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In this paper, a modified designing method about PCFs with large modal area, low confinement loss and flattened dispersion in a wide wavelength range is proposed. All air holes are arranged in the section according to triangular regulation and with identical spacing. The thirteen air holes which arranged in the snowflake shape in the middle of the section are replaced with high index inclusions that are smaller than the other air holes of the outer cladding which form the core region. So, a hybrid photonic crystal fiber in which a guided mode is confined simultaneously by modified total internal reflection from an array of air holes and anti-resonant reflection from the high-index inclusions is presented. We consider simulating PCF using the FDTD technique by imposing PML for boundary condition treatment in the longitudinal dimension, thereby reducing the problem to two dimensions. Desired dispersion character and low confinement loss can be realized in our designed PCFs with special section structure by optimizing the match of the spacing and air hole size in core and cladding regions and controlling the core-cladding refractive index difference.
机译:提出了一种模态面积大,限制损耗低,色散平坦在宽波长范围内的PCF的改进设计方法。所有气孔均按照三角形规则布置在截面中,并具有相同的间距。在截面中间以雪花形状排列的十三个气孔被高折射率夹杂物所取代,这些夹杂物比形成芯区的外包层的其他气孔要小。因此,提出了一种混合光子晶体光纤,其中通过改变气孔阵列的全内反射和来自高折射率夹杂物的反共振反射,同时限制了导模。我们考虑通过在纵向维度上施加用于边界条件处理的PML来模拟使用FDTD技术的PCF,从而将问题减少到二维。通过优化芯和包层区域的间距和气孔尺寸的匹配并控制芯-包层的折射率差,可以在我们设计的具有特殊截面结构的PCF中实现所需的色散特性和低的约束损耗。

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