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用多重多极子方法对光子晶体波导中的不连续性进行建模。

Modeling of discontinuities in photonic crystal waveguides with the multiple multipole method.

作者信息

Moreno Esteban, Erni Daniel, Hafner Christian

机构信息

Laboratory for Electromagnetic Fields and Microwave Electronics, Swiss Federal Institute of Technology, ETH-Zentrum, Gloriastrasse 35, CH-8092 Zurich, Switzerland.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2002 Sep;66(3 Pt 2B):036618. doi: 10.1103/PhysRevE.66.036618. Epub 2002 Sep 27.

Abstract

A method for the simulation of discontinuities in photonic crystal defect waveguides is presented. This frequency domain technique is based on the multiple multipole method. In contrast with other known techniques, spurious reflections (due to the impedance mismatch at the waveguide terminations) are avoided. The absence of spurious reflections allows one to characterize precisely the intrinsic behavior of the sole discontinuity, reducing at the same time the size of the simulation domain. To achieve a perfect impedance matching, the guided modes of infinitely long waveguides corresponding to the input and output channels of the discontinuity are first computed using a supercell approach. Then, the discontinuity is fed with one of the previously computed modes, and the fields transmitted or reflected towards the discontinuity arms are matched to the modal fields corresponding to each output waveguide. This method allows one to compute the intrinsic transmission and reflection coefficients of the discontinuity (i.e., coefficients not altered by additional effects such as finite crystal size, etc.). The procedure is presented in detail using some simple discontinuities as test cases. Then, it is applied to the computation of the coupling from a waveguide to free space and for the analysis of a filtering T junction.

摘要

提出了一种用于模拟光子晶体缺陷波导中不连续性的方法。这种频域技术基于多重多极方法。与其他已知技术相比,避免了杂散反射(由于波导终端处的阻抗不匹配)。杂散反射的不存在使得能够精确地表征单一不连续性的固有行为,同时减小了模拟域的大小。为了实现完美的阻抗匹配,首先使用超胞方法计算与不连续性的输入和输出通道相对应的无限长波导的导模。然后,用先前计算的模式之一馈入不连续性,并且向不连续性臂传输或反射的场与对应于每个输出波导的模式场相匹配。这种方法允许计算不连续性的固有传输和反射系数(即,不受诸如有限晶体尺寸等附加效应改变的系数)。使用一些简单的不连续性作为测试案例详细介绍了该过程。然后,将其应用于从波导到自由空间的耦合计算以及滤波T形结的分析。

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