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A full-vectorial FDFD analysis of Photonic Crystal Fibers

机译:光子晶体光纤的全矢量FDFD分析

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A full-vectorial finite-difference frequency domain (FDFD) method is used to analyze the photonic bandgaps and the mode fields of photonic crystal fibers (PCFs) with different structures. As a new kind of developed fibers with many particular and useful characteristics, PCFs have recently attracted a great deal of interest both in theory and experiments, and many modeling techniques have been applied to describe their characteristics. It has been proved that the full-vectorial FDFD method can achieve an accurate and stable analysis on the fantastic features of the PCF, by which the photonic bandgaps and the mode fields can be simply calculated first. The bandgap scan map of the triangular structure with the change of holes diameters has been proposed. And the bandgap maps of the 2D triangular lattice with and without defects are compared, too. Furthermore, the numerical results for 2D TE modes in the two dimensional triangular lattice with defects have been presented, where the air holes are circle and hexagon, respectively. The latter structure brought forward by us proves to be fit for the gas sensors. Based on the photonic bandgaps and the mode fields of the PCF, several other useful features can be calculated for the later analysis of the fibers.
机译:使用全矢量有限差分频域(FDFD)方法分析结构不同的光子晶体光纤(PCF)的光子带隙和模场。 PCF作为一种具有许多特殊有用特性的新型发达纤维,最近在理论和实验上都引起了人们的极大兴趣,并且已经应用​​了许多建模技术来描述其特性。事实证明,全矢量FDFD方法可以对PCF的奇妙特性进行准确而稳定的分析,从而可以首先简单地计算出光子带隙和模场。提出了随孔直径变化的三角结构的带隙扫描图。并比较了有缺陷和无缺陷的2D三角晶格的带隙图。此外,在二维缺陷的二维三角晶格中,二维气模的数值结果已经给出,其中气孔分别为圆形和六边形。我们提出的后一种结构被证明适用于气体传感器。基于光子带隙和PCF的模场,可以计算其他一些有用的特征,以便以后对光纤进行分析。

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