English

Layer-Resolved Resonance Intensity of Evanescent Polariton Modes in Anisotropic Multilayers

Optics 2023-07-12 v1

Abstract

Phonon polariton modes in layered anisotropic heterostructures are a key building block for modern nanophotonic technologies. The light-matter interaction for evanescent excitation of such a multilayer system can be theoretically described by a transfer matrix formalism. This method allows to compute the imaginary part of the p-polarized reflection coefficient Im(rpp)(r_{pp}), which is typically used to analyze the polariton dispersion of the multilayer structure, but lacks the possibility to access the layer-resolved polaritonic response. We present an approach to compute the layer-resolved polariton resonance intensity in aribtrarily anisotropic layered heterostructures, based on calculating the Poynting vector extracted from a transfer matrix formalism. Our approach is independent of the experimental excitation conditions, and fulfills an empirical conservation law. As a test ground, we study two state-of-the-art nanophotonic multilayer systems, covering strong coupling and tunable hyperbolic surface phonon polaritons in twisted \MoO~double layers. Providing a new level of insight into the polaritonic response, our method holds great potential for understanding, optimizing and predicting new forms of polariton heterostructures in the future.

Keywords

Cite

@article{arxiv.2209.00877,
  title  = {Layer-Resolved Resonance Intensity of Evanescent Polariton Modes in Anisotropic Multilayers},
  author = {Nikolai Christian Passler and Giulia Carini and Dmitry N. Chigrin and Alexander Paarmann},
  journal= {arXiv preprint arXiv:2209.00877},
  year   = {2023}
}

Comments

7 pages, 2 figures