Strain-Induced Boundary States and Phase Transitions in Graphene Flakes

Fuente: arXiv
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Main Authors: Liang, Yongsheng, Xia, Shiqi, Song, Daohong, Buljan, Hrvoje, Chen, Zhigang
Format: Preprint
Published: 2025
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author Liang, Yongsheng
Xia, Shiqi
Song, Daohong
Buljan, Hrvoje
Chen, Zhigang
author_facet Liang, Yongsheng
Xia, Shiqi
Song, Daohong
Buljan, Hrvoje
Chen, Zhigang
contents Strain has been extensively employed to tailor graphene's properties and has emerged as a powerful tool for engineering gauge fields and exploring fundamental phenomena in artificial platforms like photonic graphene. Here we discover that, in graphene flakes with custom boundaries, one can create or destroy edge states depending on the direction of the applied uniaxial strain. This is experimentally demonstrated in a photonic platform with two specific examples: one flake structure with pairs of twig and zigzag edges, and the other with pairs of armchair and bearded edges. We find that the existence of the edge states and their positions in momentum space are accurately predicted with appropriate winding numbers, unveiling the underlying topology of such edge states. Furthermore, when a graphene flake supports the maximum number of edge states along boundaries after a semimetal-to-insulator transition, both compact localized edge and corner states emerge, indicating the realization of a photonic minimal-model higher-order topological insulator based on such strained graphene flakes.
format Preprint
id arxiv_https___arxiv_org_abs_2509_20795
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Strain-Induced Boundary States and Phase Transitions in Graphene Flakes
Liang, Yongsheng
Xia, Shiqi
Song, Daohong
Buljan, Hrvoje
Chen, Zhigang
Optics
Strain has been extensively employed to tailor graphene's properties and has emerged as a powerful tool for engineering gauge fields and exploring fundamental phenomena in artificial platforms like photonic graphene. Here we discover that, in graphene flakes with custom boundaries, one can create or destroy edge states depending on the direction of the applied uniaxial strain. This is experimentally demonstrated in a photonic platform with two specific examples: one flake structure with pairs of twig and zigzag edges, and the other with pairs of armchair and bearded edges. We find that the existence of the edge states and their positions in momentum space are accurately predicted with appropriate winding numbers, unveiling the underlying topology of such edge states. Furthermore, when a graphene flake supports the maximum number of edge states along boundaries after a semimetal-to-insulator transition, both compact localized edge and corner states emerge, indicating the realization of a photonic minimal-model higher-order topological insulator based on such strained graphene flakes.
title Strain-Induced Boundary States and Phase Transitions in Graphene Flakes
topic Optics
url https://arxiv.org/abs/2509.20795