Symmetry Analysis of the Non-Hermitian Electro-Optic Effect in Crystals

Fuente: arXiv
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Auteurs principaux: Lannebère, Sylvain, Rappoport, Tatiana G., Morgado, Tiago A., Souza, Ivo, Silveirinha, Mário G.
Format: Preprint
Publié: 2025
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author Lannebère, Sylvain
Rappoport, Tatiana G.
Morgado, Tiago A.
Souza, Ivo
Silveirinha, Mário G.
author_facet Lannebère, Sylvain
Rappoport, Tatiana G.
Morgado, Tiago A.
Souza, Ivo
Silveirinha, Mário G.
contents Here, we investigate how crystal symmetry tailors the non-Hermitian electro-optic effect arising from the Berry curvature dipole. Specifically, we demonstrate the critical influence of the material's point group symmetry and external electric biases in shaping this effect, leading to current-induced optical gain and non-reciprocal optical responses. Through a symmetry-based analysis of the crystallographic point groups, we identify how different symmetries affect the electro-optic response, enabling the engineering of polarization-dependent optical gain without the need for gyrotropic effects. In particular, we demonstrate that the non-Hermitian electro-optic response in a broad class of crystals is characterized by linear dichroic gain. In this type of response, the eigenpolarizations that activate the gain or dissipation are linearly polarized. Depending on the point group symmetry, it is possible to achieve gain (or dissipation) for all eigenpolarizations or to observe polarization-dependent gain and dissipation. Weyl semimetals emerge as promising candidates for realizing significant non-Hermitian electro-optic effects and linear dichroic gain. We further examine practical applications by studying the reflectance of biased materials in setups involving mirrors, demonstrating how optical gain and attenuation can be controlled via symmetry and bias configurations.
format Preprint
id arxiv_https___arxiv_org_abs_2502_03399
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Symmetry Analysis of the Non-Hermitian Electro-Optic Effect in Crystals
Lannebère, Sylvain
Rappoport, Tatiana G.
Morgado, Tiago A.
Souza, Ivo
Silveirinha, Mário G.
Mesoscale and Nanoscale Physics
Optics
Here, we investigate how crystal symmetry tailors the non-Hermitian electro-optic effect arising from the Berry curvature dipole. Specifically, we demonstrate the critical influence of the material's point group symmetry and external electric biases in shaping this effect, leading to current-induced optical gain and non-reciprocal optical responses. Through a symmetry-based analysis of the crystallographic point groups, we identify how different symmetries affect the electro-optic response, enabling the engineering of polarization-dependent optical gain without the need for gyrotropic effects. In particular, we demonstrate that the non-Hermitian electro-optic response in a broad class of crystals is characterized by linear dichroic gain. In this type of response, the eigenpolarizations that activate the gain or dissipation are linearly polarized. Depending on the point group symmetry, it is possible to achieve gain (or dissipation) for all eigenpolarizations or to observe polarization-dependent gain and dissipation. Weyl semimetals emerge as promising candidates for realizing significant non-Hermitian electro-optic effects and linear dichroic gain. We further examine practical applications by studying the reflectance of biased materials in setups involving mirrors, demonstrating how optical gain and attenuation can be controlled via symmetry and bias configurations.
title Symmetry Analysis of the Non-Hermitian Electro-Optic Effect in Crystals
topic Mesoscale and Nanoscale Physics
Optics
url https://arxiv.org/abs/2502.03399