Symmetry-Based Classification of Chern Phases in Honeycomb Photonic Crystals

Fuente: arXiv
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Main Authors: Câmara, Rodrigo P., Rappoport, Tatiana G., Silveirinha, Mário G.
Format: Preprint
Published: 2024
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author Câmara, Rodrigo P.
Rappoport, Tatiana G.
Silveirinha, Mário G.
author_facet Câmara, Rodrigo P.
Rappoport, Tatiana G.
Silveirinha, Mário G.
contents In this work, we develop a symmetry-based classification of Chern phases in honeycomb photonic crystals, considering arbitrary nonreciprocal couplings compatible with energy conservation. Our analysis focuses on crystals formed through nonreciprocal perturbations of photonic graphene. These perturbations, which can have arbitrary spatial variations, are generally described by scalar and vector fields. Using a tight-binding model, we consider the most general nonreciprocal interactions, including gyromagnetic, pseudo-Tellegen, and moving medium responses, and examine how the corresponding nonreciprocal fields influence the crystal's topology. Our findings reveal that nonreciprocal interactions alone are insufficient to induce a topologically nontrivial phase. Instead, a nontrivial p6m component in the nonreciprocal fields is required to open a bandgap and achieve a non-zero Chern number. These results provide a symmetry-based roadmap for engineering photonic topological phases via nonreciprocal perturbations of photonic graphene, offering practical guidelines for designing topological phases in graphene-like photonic crystals.
format Preprint
id arxiv_https___arxiv_org_abs_2412_04182
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Symmetry-Based Classification of Chern Phases in Honeycomb Photonic Crystals
Câmara, Rodrigo P.
Rappoport, Tatiana G.
Silveirinha, Mário G.
Optics
In this work, we develop a symmetry-based classification of Chern phases in honeycomb photonic crystals, considering arbitrary nonreciprocal couplings compatible with energy conservation. Our analysis focuses on crystals formed through nonreciprocal perturbations of photonic graphene. These perturbations, which can have arbitrary spatial variations, are generally described by scalar and vector fields. Using a tight-binding model, we consider the most general nonreciprocal interactions, including gyromagnetic, pseudo-Tellegen, and moving medium responses, and examine how the corresponding nonreciprocal fields influence the crystal's topology. Our findings reveal that nonreciprocal interactions alone are insufficient to induce a topologically nontrivial phase. Instead, a nontrivial p6m component in the nonreciprocal fields is required to open a bandgap and achieve a non-zero Chern number. These results provide a symmetry-based roadmap for engineering photonic topological phases via nonreciprocal perturbations of photonic graphene, offering practical guidelines for designing topological phases in graphene-like photonic crystals.
title Symmetry-Based Classification of Chern Phases in Honeycomb Photonic Crystals
topic Optics
url https://arxiv.org/abs/2412.04182