Efficient treatment of stacked metasurfaces for optimizing and enhancing the range of accessible optical functionalities
Christoph Menzel, Jan Sperrhake, Thomas Pertsch

TL;DR
This paper introduces an adapted S-matrix formalism for efficiently modeling stacked metasurfaces, enabling accurate design and optimization of complex optical functionalities without extensive simulations.
Contribution
It develops a simplified, semi-analytical S-matrix approach for stacked metasurfaces that directly uses individual layer parameters, bypassing effective medium approximations.
Findings
The formalism accurately predicts stacked metasurface responses.
It allows for efficient optimization of complex optical functionalities.
The approach is applicable to various materials and geometries.
Abstract
We present, discuss and validate an adapted S-matrix formalism for an efficient, simplified treatment of stacked homogeneous periodically structured metasurfaces operated under normally incident plane wave excitation. The proposed formalism can be applied to any material system, arbitrarily shaped metaatoms, at any frequency and with arbitrary subwavelength periods. Circumventing the introduction of any kind of effective parameters we directly use the S-parameters of the individual metasurfaces to calculate the response of an arbitrary stack. In fact, the S-parameters are the complex parameters of choice fully characterizing the homogeneous metasurfaces, in particular with respect to its polarization manipulating properties. Just as effective material parameters like the permittivity and the permeability or wave parameters like the propagation constant and the impedance, the stacking…
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