Quantum anomalous Hall effect and electric-field-induced topological phase transition in AB-stacked MoTe${}_2$/WSe${}_2$ moir\'e heterobilayers
Yao-Wen Chang, Yia-Chung Chang

TL;DR
This paper introduces a novel theoretical mechanism explaining the quantum anomalous Hall effect and electric-field-driven topological phase transition in AB-stacked MoTe2/WSe2 moiré heterobilayers, emphasizing magnetic orders and exciton effects.
Contribution
It proposes a new explanation involving magnetic orders and exciton ferromagnetism for the QAH effect and phase transition in moiré heterobilayers, aligning with experimental data.
Findings
Chern band arises from band inversion of moiré hole bands.
Magnetic orders induce and stabilize the topological phase.
Electric field triggers a transition involving exciton condensates.
Abstract
We propose a new mechanism to explain the quantum anomalous Hall (QAH) effect and the electric-field-induced topological phase transition in AB-stacked MoTe/WSe moir\'e heterobilayers at hole filling. We suggest that the Chern band of the QAH state is generated from an intrinsic band inversion composed of the highest two moir\'e hole bands with opposite valley numbers and a gap opening induced by two Coulomb-interaction-driven magnetic orders. These magnetic orders, including an in-plane -N\'eel order and an in-plane ferromagnetic order, interact with moir\'e bands via corresponding in-plane exchange fields. The N\'eel order ensures the insulating gap, the ferromagnetic order induces the non-zero Chern number, and both orders contribute to time-reversal symmetry breaking. The N\'eel order is acquired from the Hartree-Fock exchange interaction, and the…
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Taxonomy
Topics2D Materials and Applications · Topological Materials and Phenomena · Quantum, superfluid, helium dynamics
