Quantum anomalous Hall effect in a nonmagnetic bismuth monolayer with a high Chern number

Abstract

The quantum anomalous Hall effect (QAHE) with a high Chern number hosts multiple dissipationless chiral edge channels, which is of fundamental interest and promising for applications in spintronics. However, QAHE is currently limited in two-dimensional (2D) ferromagnets with Chern number Image ID:d4mh01713g-t1.gif. Using a tight-binding model, we put forward that Floquet engineering offers a strategy to achieve QAHE in 2D nonmagnets, and, in contrast to generally reported QAHE in 2D ferromagnets, a high-Chern-number Image ID:d4mh01713g-t2.gif is obtained accompanied by the emergence of two chiral edge states. Moreover, based on the first-principles calculations, we identify tetragonal bismuth as an experimentally feasible candidate of the proposed light-induced QAHE, where remarkably a topological phase transition from the 2D [Doublestruck Z]2 topological insulator to QAHE occurs. Our results open new opportunities to realize exotic QAH physics that increases the feasibility of experimental realization and applications in spintronics devices.

Graphical abstract: Quantum anomalous Hall effect in a nonmagnetic bismuth monolayer with a high Chern number

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Article information

Article type
Communication
Submitted
27 Nov 2024
Accepted
16 Jan 2025
First published
18 Jan 2025

Mater. Horiz., 2025, Advance Article

Quantum anomalous Hall effect in a nonmagnetic bismuth monolayer with a high Chern number

Z. Zhang, R. Li, Y. Bai, Y. Zhang, B. Huang, Y. Dai and C. Niu, Mater. Horiz., 2025, Advance Article , DOI: 10.1039/D4MH01713G

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