Generalized Elastodynamic Model for Nanophotonics
J.V. Alvarez, Bahram Djafari-Rouhani, Dani Torrent

TL;DR
This paper introduces a comprehensive elastodynamic model for nanophotonics that accurately describes light-matter interactions at the nanoscale, incorporating spatial dispersion and interface effects without additional boundary conditions.
Contribution
It develops a self-consistent classical theory using elastodynamics to model non-local effects in nanostructured materials, unifying interface treatment across different material types.
Findings
The model converges to local boundary conditions in the low dispersion limit.
It provides a natural boundary condition derivation without extra hypotheses.
The approach accurately describes solid-solid and solid-vacuum interfaces.
Abstract
A self-consistent theory for the classical description of the interaction of light and matter at the nano-scale is presented, which takes into account spatial dispersion. Up to now, the Maxwell equations in nanostructured materials with spatial dispersion have been solved by the introduction of the so-called Additional Boundary Conditions. In this paper, we derive an approach where non-local effects are studied in a precise and uniquely defined way, thus allowing the treatment of all solid-solid interfaces (metals, semiconductors or insulators), as well as solid-vacuum interfaces in the same framework. The theory is based on the derivation of a potential energy for an ensemble of electrons in a given potential, where the deformation of the ensemble is treated as in a solid, including both shear and compressional deformations, instead of a fluid described only by a bulk compressibility…
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