Exact closed forms for the transmittance of electromagnetic waves in one-dimensional anisotropic periodic media
Jos\'e Concepci\'on Torres-Guzm\'an, Alfredo D\'iaz-de-Anda, Jes\'us, Arriaga

TL;DR
This paper derives exact closed-form expressions for the transfer matrix and transmittance of electromagnetic waves in finite one-dimensional anisotropic periodic media, enabling precise analysis of complex layered systems.
Contribution
It introduces a novel recursive relation approach using Tetranacci polynomials to obtain closed-form solutions for transfer matrices in 1D anisotropic media.
Findings
Closed-form expressions for transfer matrix and transmittance.
Applicable to lossy, magnetic, and optically active media.
Analytical dispersion relations for specific layered systems.
Abstract
In this work, we obtain closed expressions for the transfer matrix and the transmittance of electromagnetic waves propagating in finite 1D anisotropic periodic stratified media with an arbitrary number of cells. By invoking the Cayley-Hamilton theorem on the transfer matrix for the electromagnetic field in a periodic stratified media formed by N cells, we obtain a fourth-degree recursive relation for the matrix coefficients that defines the so-called Tetranacci Polynomials. In the symmetric case, corresponding to a unit-cell transfer matrix with a characteristic polynomial where the coefficients of the linear and cubic terms are equal, closed expressions for the solutions to the recursive relation, known as symmetric Tetranacci Polynomials, have recently been derived, allowing us to write the transfer matrix and transmittance in a closed form. We show as sufficient conditions that the…
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Taxonomy
TopicsPhotonic Crystals and Applications · Electromagnetic Scattering and Analysis · Optical Coatings and Gratings
