Physically Agnostic Quasinormal Mode Expansion in Time Dispersive Structures:from Mechanical Vibrations to Nanophotonic Resonances

Fuente: arXiv
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Main Authors: Nicolet, André, Demésy, Guillaume, Zolla, Frédéric, Campos, Carmen, Roman, Jose E., Geuzaine, Christophe
Format: Preprint
Published: 2024
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author Nicolet, André
Demésy, Guillaume
Zolla, Frédéric
Campos, Carmen
Roman, Jose E.
Geuzaine, Christophe
author_facet Nicolet, André
Demésy, Guillaume
Zolla, Frédéric
Campos, Carmen
Roman, Jose E.
Geuzaine, Christophe
contents Resonances, also known as quasi normal modes (QNM) in the non-Hermitian case, play an ubiquitous role in all domains of physics ruled by wave phenomena, notably in continuum mechanics, acoustics, electrodynamics, and quantum theory. In this paper, we present a QNM expansion for dispersive systems, recently applied to photonics but based on sixty year old techniques in mechanics. The resulting numerical algorithm appears to be physically agnostic, that is independent of the considered physical problem and can therefore be implemented as a mere toolbox in a nonlinear eigenvalue computation library.
format Preprint
id arxiv_https___arxiv_org_abs_2410_03631
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Physically Agnostic Quasinormal Mode Expansion in Time Dispersive Structures:from Mechanical Vibrations to Nanophotonic Resonances
Nicolet, André
Demésy, Guillaume
Zolla, Frédéric
Campos, Carmen
Roman, Jose E.
Geuzaine, Christophe
Optics
Computational Physics
65N25, 35B34, 78-10, 78A25, 78M10, 70J10, 74S05
G.1.8
Resonances, also known as quasi normal modes (QNM) in the non-Hermitian case, play an ubiquitous role in all domains of physics ruled by wave phenomena, notably in continuum mechanics, acoustics, electrodynamics, and quantum theory. In this paper, we present a QNM expansion for dispersive systems, recently applied to photonics but based on sixty year old techniques in mechanics. The resulting numerical algorithm appears to be physically agnostic, that is independent of the considered physical problem and can therefore be implemented as a mere toolbox in a nonlinear eigenvalue computation library.
title Physically Agnostic Quasinormal Mode Expansion in Time Dispersive Structures:from Mechanical Vibrations to Nanophotonic Resonances
topic Optics
Computational Physics
65N25, 35B34, 78-10, 78A25, 78M10, 70J10, 74S05
G.1.8
url https://arxiv.org/abs/2410.03631