Propagating Edge and Interfacial States in Corrugated Graphene: Robustness and Configurability

Abstract Periodically strained graphene provides a versatile platform to realize moiré-like electronic structures. We show that the interplay between a strain-induced pseudomagnetic field and a displacement-field-controlled scalar potential enables the formation of isolated narrow bands. Some of the low-energy bands are topological, carrying valley-opposite Chern numbers. Remarkably, despite a vanishing total Chern number, propagating in-gap edge states emerge in various nanoribbon geometries that preserve valley symmetry. We elucidate the distinct mechanisms responsible for edge states in the zero-energy and higher-energy gaps and demonstrate their robustness against disorders, despite lacking conventional topological protection. Leveraging these properties, we propose device architectures in which a displacement field switches the zero-energy gap and its associated edge channels on and off. Furthermore, split-gate geometries generate topological interfacial states that coexist with the edge modes and can be spatially reconfigured. These results establish strain superlattices as a powerful platform for engineering topological electronic states and electronic transport.

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Publication Details

Journal
Nano Letters
Published
2026-09-21
DOI
https://doi.org/10.1021/acs.nanolett.6c04446
Primary Topic
Graphene research and applications
Type
article
Field-Weighted Citation Impact
0.00
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article

Propagating Edge and Interfacial States in Corrugated Graphene: Robustness and Configurability

Dawei Zhai, Adel Belayadi, Nancy Sandler
Nano Letters
Graphene research and applications
article

Propagating Edge and Interfacial States in Corrugated Graphene: Robustness and Configurability

Dawei Zhai, Adel Belayadi, Nancy Sandler
article en

Abstract

Abstract Periodically strained graphene provides a versatile platform to realize moiré-like electronic structures. We show that the interplay between a strain-induced pseudomagnetic field and a displacement-field-controlled scalar potential enables the formation of isolated narrow bands. Some of the low-energy bands are topological, carrying valley-opposite Chern numbers. Remarkably, despite a vanishing total Chern number, propagating in-gap edge states emerge in various nanoribbon geometries that preserve valley symmetry. We elucidate the distinct mechanisms responsible for edge states in the zero-energy and higher-energy gaps and demonstrate their robustness against disorders, despite lacking conventional topological protection. Leveraging these properties, we propose device architectures in which a displacement field switches the zero-energy gap and its associated edge channels on and off. Furthermore, split-gate geometries generate topological interfacial states that coexist with the edge modes and can be spatially reconfigured. These results establish strain superlattices as a powerful platform for engineering topological electronic states and electronic transport.

Nano Letters
University of Sciences and Technology Houari Boumediene (DZ), Ohio University (US), University of Hong Kong (HK)
Sustainable cities and communities
Openalex Percentile: Top 58%
Graphene research and applications
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