Antiferromagnetic Quantum Anomalous Hall Effect Modulated by Spin Flips and Flops
Zichen Lian, Yongchao Wang, Yongqian Wang, Yang Feng, Zehao Dong, Shuai Yang, Liangcai Xu, Yaoxin Li, Bohan Fu, Yuetan Li, Wanjun Jiang, Chang Liu, Jinsong Zhang, Yayu Wang

TL;DR
This paper demonstrates tunable antiferromagnetic quantum anomalous Hall effects in MnBi2Te4, revealing spin-flip and flop transitions that influence topological phases and offering new avenues for antiferromagnetic spintronics.
Contribution
It reports the experimental observation of gate and magnetic field-tuned quantum phase transitions driven by spin configurations in MnBi2Te4.
Findings
Gate voltage and magnetic field induce quantum phase transitions.
In-plane magnetic field enhances coercive field and exchange gap.
Spin flip and flop transitions affect topological charge transport.
Abstract
The interplay between nontrivial band topology and layered antiferromagnetism in MnBi2Te4 has opened up a new avenue for exploring topological phases of matter. Representative examples include the quantum anomalous Hall effect and axion insulator state observed in odd and even number layers of MnBi2Te4, when the top and bottom surfaces have parallel and antiparallel spin alignments respectively. The rich and complex spin dynamics associated with the van der Waals antiferromagnetic order is expected to generate novel topological phases and phase transitions that are unique to MnBi2Te4. Here we fabricate a device of 7-septuple-layer MnBi2Te4 covered with AlOx capping layer, which enables the investigation of antiferromagnetic quantum anomalous Hall effect over wide parameter spaces. By tuning the gate voltage and perpendicular magnetic field, we uncover a cascade of quantum phase…
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Taxonomy
TopicsPhysics of Superconductivity and Magnetism · Quantum and electron transport phenomena · Magnetic Field Sensors Techniques
