Shaping the topology of twisted bilayer graphene via time-reversal symmetry breaking

Fuente: arXiv
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Auteurs principaux: Jiang, Cunyuan, Baggioli, Matteo, Jiang, Qing-Dong
Format: Preprint
Publié: 2024
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author Jiang, Cunyuan
Baggioli, Matteo
Jiang, Qing-Dong
author_facet Jiang, Cunyuan
Baggioli, Matteo
Jiang, Qing-Dong
contents Symmetry breaking is an effective tool for tuning the transport and topological properties of 2D layered materials. Among these materials, twisted bilayer graphene (TBG) has emerged as a promising platform for new physics, characterized by a rich interplay between topological features and strongly correlated electronic behavior. In this study, we utilize time-reversal symmetry breaking (TRSB) to manipulate the topological properties of TBG. By varying the strength of TRSB, we discover a topological phase transition between a topological insulating phase, which exhibits a pair of flat bands with opposite Chern numbers, and a novel insulating state where the Chern number, but not the Berry curvature, of the flat bands vanishes. We demonstrate that this topological transition is mediated by a gap closing at the $Γ$ point, and we construct a three-dimensional phase diagram as a function of the twisting angle, the symmetry-breaking parameter, and the mismatch coupling between AA and AB stacking regions. Finally, we show that this novel electronic phase can be identified in the lab by measuring, as a function of the Fermi energy, its non-quantized anomalous Hall conductivity that is induced by the Berry dipole density of the lowest flat bands.
format Preprint
id arxiv_https___arxiv_org_abs_2406_02947
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Shaping the topology of twisted bilayer graphene via time-reversal symmetry breaking
Jiang, Cunyuan
Baggioli, Matteo
Jiang, Qing-Dong
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Superconductivity
Quantum Physics
Symmetry breaking is an effective tool for tuning the transport and topological properties of 2D layered materials. Among these materials, twisted bilayer graphene (TBG) has emerged as a promising platform for new physics, characterized by a rich interplay between topological features and strongly correlated electronic behavior. In this study, we utilize time-reversal symmetry breaking (TRSB) to manipulate the topological properties of TBG. By varying the strength of TRSB, we discover a topological phase transition between a topological insulating phase, which exhibits a pair of flat bands with opposite Chern numbers, and a novel insulating state where the Chern number, but not the Berry curvature, of the flat bands vanishes. We demonstrate that this topological transition is mediated by a gap closing at the $Γ$ point, and we construct a three-dimensional phase diagram as a function of the twisting angle, the symmetry-breaking parameter, and the mismatch coupling between AA and AB stacking regions. Finally, we show that this novel electronic phase can be identified in the lab by measuring, as a function of the Fermi energy, its non-quantized anomalous Hall conductivity that is induced by the Berry dipole density of the lowest flat bands.
title Shaping the topology of twisted bilayer graphene via time-reversal symmetry breaking
topic Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Superconductivity
Quantum Physics
url https://arxiv.org/abs/2406.02947