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Recursive Green's function technique and its application to surface-state photonic cavities and waveguides

机译:递归格林函数技术及其在表面态光子腔和波导中的应用

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We report a new computational method based on the recursive Green's function technique for a calculation of light propagation in photonic crystal (PC) structures. The method computes the Green's function of the photonic structure recursively by adding slice by slice on the basis of the Dyson's equation, that relaxes memory requirements and accelerates the computational process. The method can easily account for the infinite extension of the structure both into the air and into the space occupied by the photonic crystal by making use of the so-called "surface Green's functions". This eliminates the spurious solutions (often present in the conventional finite-difference time domain methods). The developed method has been applied to study surface modes in semi-infinite photonic crystals and their application in surface-state cavities and waveguides. Namely, we demonstrate that confining PC surface states may result in enhanced intensity of an electromagnetic field on the surface and very high Q factor of the surface state. This effect can be employed as an operational principle for surface-mode lasers and sensors. We also show a possibility of using surface states as a novel type of waveguides and discuss their applications as efficient light couplers and directional beamers.
机译:我们报告了一种基于递归格林函数技术的新计算方法,用于计算光子晶体(PC)结构中的光传播。该方法通过在戴森方程的基础上逐层相加来递归计算光子结构的格林函数,从而放宽了内存需求并加快了计算过程。通过利用所谓的“表面格林函数”,该方法可以容易地解释结构在空气中以及在光子晶体占据的空间中的无限扩展。这消除了杂散解(通常存在于常规的有限差分时域方法中)。所开发的方法已被用于研究半无限光子晶体中的表面模式及其在表面态腔和波导中的应用。即,我们证明了限制PC表面状态可能会导致表面上电磁场的强度增强以及表面状态的非常高的Q因子。该效果可用作表面模式激光器和传感器的工作原理。我们还展示了将表面态用作新型波导的可能性,并讨论了它们作为高效光耦合器和定向射束器的应用。

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