Botten L C, Nicorovici N A, Asatryan A A, McPhedran R C, de Sterke C M, Robinson P A
School of Mathematical Sciences, University of Technology, Sydney, NSW, Australia.
J Opt Soc Am A Opt Image Sci Vis. 2000 Dec;17(12):2165-76. doi: 10.1364/josaa.17.002165.
We present a formulation for wave propagation and scattering through stacked gratings comprising metallic and dielectric cylinders. By modeling a photonic crystal as a grating stack of this type, we thus formulate an efficient and accurate method for photonic crystal calculations that allows us to calculate reflection and transmission matrices. The stack may contain an arbitrary number of gratings, provided that each has a common period. The formulation uses a Green's function approach based on lattice sums to obtain the scattering matrices of each layer, and it couples these layers through recurrence relations. In a companion paper [J. Opt Soc. Am. A 17, 2177 (2000)] we discuss the numerical implementation of the method and give a comprehensive treatment of its conservation properties.
我们提出了一种用于波在包含金属圆柱和介质圆柱的堆叠光栅中传播和散射的公式。通过将光子晶体建模为这种类型的光栅堆叠,我们从而制定了一种用于光子晶体计算的高效且准确的方法,该方法使我们能够计算反射和透射矩阵。该堆叠可以包含任意数量的光栅,只要每个光栅具有共同的周期。该公式使用基于晶格和的格林函数方法来获得每层的散射矩阵,并通过递推关系将这些层耦合起来。在一篇配套论文[《美国光学学会志A》17, 2177 (2000)]中,我们讨论了该方法的数值实现,并对其守恒特性进行了全面论述。