首页> 外文会议>Transparent Optical Networks, 2003. Proceedings of 2003 5th International Conference on >Coupling, scattering, and perturbation theory: Semi-analytical analyses of photonic-crystal waveguides
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Coupling, scattering, and perturbation theory: Semi-analytical analyses of photonic-crystal waveguides

机译:耦合,散射和微扰理论:光子晶体波导的半分析

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Although brute-force simulations of Maxwell's equations, such as FDTD methods, have enjoyed wide success in modelling photonic-crystal systems, they are not ideally suited for the study of weak perturbations, such as surface roughness or gradual waveguide transitions, where a high resolution and/or large computational cells are required. Instead, we suggest that these important problems are ideally suited for semi-analytical methods, which employ perturbative corrections (typically only needing the lowest order) to the exactly understood perfect waveguide. However, semi-analytical methods developed for the study of conventional waveguides require modification for high index-contrast, strongly periodic photonic crystals, and we have developed corrected forms of coupled-wave theory, perturbation theory, and the volume-current method for this situation. In this paper, we survey these new developments and describe the most significant results for adiabatic waveguide transitions and disorder losses. We present design rules and scaling laws for adiabatic transitions. In the case of disorder, we show both analytically and numerically that photonic crystals can suppress radiation loss without any corresponding increase in reflection, compared to a conventional strip waveguide with the same modal area, group velocity, and disorder strength.
机译:尽管Maxwell方程的强力模拟(例如FDTD方法)在光子晶体系统建模中获得了广泛的成功,但它们并不理想地用于研究微扰动(例如表面粗糙度或渐变波导跃迁)的高分辨率和/或需要大量计算单元。取而代之的是,我们建议这些重要的问题非常适合半分析方法,该方法对精确理解的完美波导采用微扰校正(通常只需要最低阶)。但是,为研究常规波导而开发的半分析方法需要对高折射率,强周期性光子晶体进行修改,并且针对这种情况,我们已经开发了校正形式的耦合波理论,微扰理论和体电流方法。在本文中,我们调查了这些新进展,并描述了绝热波导过渡和无序损耗的最重要结果。我们提出了绝热过渡的设计规则和缩放定律。在无序的情况下,我们从分析和数值上都显示出,与具有相同模态面积,群速度和无序强度的常规条形波导相比,光子晶体可以抑制辐射损耗而没有任何相应的反射增加。

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