Quantum Anomalous Hall Effect in Ferromagnetic Metals

Fuente: arXiv
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Autori principali: Wan, Yu-Hao, Liu, Peng-Yi, Sun, Qing-Feng
Natura: Preprint
Pubblicazione: 2025
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author Wan, Yu-Hao
Liu, Peng-Yi
Sun, Qing-Feng
author_facet Wan, Yu-Hao
Liu, Peng-Yi
Sun, Qing-Feng
contents The quantum anomalous Hall (QAH) effect holds fundamental importance in topological physics and technological promise for electronics. It is generally believed that the QAH effect can only be realized in insulators. In this Letter, we theoretically demonstrate that the QAH effect can also be realized in metallic systems, representing a phase distinct from the conventional QAH phase in insulators. This phase is characterized by the coexistence of chiral edge channels and isotropic bulk conduction channels without a bulk energy gap. Notably, in a six-terminal Hall bar, our calculations show that, the quantized Hall conductivity and nonzero longitudinal conductivity can emerge due to dephasing, despite the Hall resistivity itself never becoming quantized. Furthermore, the quantized Hall conductivity exhibits remarkable robustness against disorder. Our findings not only extend the range of materials capable of hosting the QAH effect from insulators to metals, but also provide insights that may pave the way for the experimental realization of the QAH effect at elevated temperatures.
format Preprint
id arxiv_https___arxiv_org_abs_2512_23394
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Quantum Anomalous Hall Effect in Ferromagnetic Metals
Wan, Yu-Hao
Liu, Peng-Yi
Sun, Qing-Feng
Mesoscale and Nanoscale Physics
The quantum anomalous Hall (QAH) effect holds fundamental importance in topological physics and technological promise for electronics. It is generally believed that the QAH effect can only be realized in insulators. In this Letter, we theoretically demonstrate that the QAH effect can also be realized in metallic systems, representing a phase distinct from the conventional QAH phase in insulators. This phase is characterized by the coexistence of chiral edge channels and isotropic bulk conduction channels without a bulk energy gap. Notably, in a six-terminal Hall bar, our calculations show that, the quantized Hall conductivity and nonzero longitudinal conductivity can emerge due to dephasing, despite the Hall resistivity itself never becoming quantized. Furthermore, the quantized Hall conductivity exhibits remarkable robustness against disorder. Our findings not only extend the range of materials capable of hosting the QAH effect from insulators to metals, but also provide insights that may pave the way for the experimental realization of the QAH effect at elevated temperatures.
title Quantum Anomalous Hall Effect in Ferromagnetic Metals
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2512.23394