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Strongly enhanced topological quantum phases in dual-surface AlO_x-encapsulated MnBi₂Te₄

Abstract

The topological quantum phases in antiferromagnetic topological insulator MnBi₂Te₄ hold promise for next-generation spintronics, but their experimental realization has been constrained by challenges in preparing high-quality devices. In this work, we report a new wax-assisted exfoliation and transfer method that enables the fabrication of MnBi₂Te₄ heterostructures with both surfaces encapsulated by AlO_x. This strategy strongly enhances the topological quantum phases in MnBi₂Te₄ flakes. We observe the robust axion insulator state in even-layer device with wide zero Hall plateau and high longitudinal resistivity, and the quantum anomalous Hall effect in odd-layer device with large hysteresis and sharp plateau transition. These results demonstrate that the combination of wax exfoliation and AlO_x encapsulation provides great potentials for exploring novel topological quantum phenomena and potential applications in MnBi₂Te₄ and other two-dimensional materials.

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