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Autori principali: Soltane, Isam Ben, Dierick, Félice, Stout, Brian, Bonod, Nicolas
Natura: Preprint
Pubblicazione: 2024
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Accesso online:https://arxiv.org/abs/2401.05756
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author Soltane, Isam Ben
Dierick, Félice
Stout, Brian
Bonod, Nicolas
author_facet Soltane, Isam Ben
Dierick, Félice
Stout, Brian
Bonod, Nicolas
contents Deriving analytical expressions of dielectric permittivities is required for numerical and physical modeling of optical systems and the soar of non-hermitian photonics motivates their prolongation in the complex plane. Analytical models are based on the association of microscopic models to describe macroscopic effects. However, the question is to know whether the resulting Debye Drude Lorentz models are not too restrictive. Here we show that the permittivity must be treated as a meromorphic transfer function that complies with the requirements of complex analysis. This function can be naturally expanded on a set of complex singularities. This singularity expansion of the dielectric permittivity allows us to derive a generalized expression of the Debye Drude Lorentz model that complies with the requirements of complex analysis and the constraints of physical systems. We show that the complex singularities and other parameters of this generalized expression can be retrieved from experimental data acquired along the real frequency axis. The accuracy of this expression is assessed for a wide range of materials including metals, 2D materials and dielectrics, and we show how the distribution of the retrieved poles helps in characterizing the materials.
format Preprint
id arxiv_https___arxiv_org_abs_2401_05756
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Generalized Drude-Lorentz Model Complying with the Singularity Expansion Method
Soltane, Isam Ben
Dierick, Félice
Stout, Brian
Bonod, Nicolas
Optics
Deriving analytical expressions of dielectric permittivities is required for numerical and physical modeling of optical systems and the soar of non-hermitian photonics motivates their prolongation in the complex plane. Analytical models are based on the association of microscopic models to describe macroscopic effects. However, the question is to know whether the resulting Debye Drude Lorentz models are not too restrictive. Here we show that the permittivity must be treated as a meromorphic transfer function that complies with the requirements of complex analysis. This function can be naturally expanded on a set of complex singularities. This singularity expansion of the dielectric permittivity allows us to derive a generalized expression of the Debye Drude Lorentz model that complies with the requirements of complex analysis and the constraints of physical systems. We show that the complex singularities and other parameters of this generalized expression can be retrieved from experimental data acquired along the real frequency axis. The accuracy of this expression is assessed for a wide range of materials including metals, 2D materials and dielectrics, and we show how the distribution of the retrieved poles helps in characterizing the materials.
title Generalized Drude-Lorentz Model Complying with the Singularity Expansion Method
topic Optics
url https://arxiv.org/abs/2401.05756