Quantized anomalous Hall resistivity achieved in molecular beam epitaxy-grown MnBi2Te4 thin films

Author:

Bai Yunhe1ORCID,Li Yuanzhao1ORCID,Luan Jianli1,Liu Ruixuan1,Song Wenyu1,Chen Yang1,Ji Peng-Fei1,Zhang Qinghua2,Meng Fanqi3,Tong Bingbing4,Li Lin4,Jiang Yuying1,Gao Zongwei4,Gu Lin3,Zhang Jinsong156,Wang Yayu156,Xue Qi-Kun1547,He Ke1546ORCID,Feng Yang4,Feng Xiao1546

Affiliation:

1. State Key Laboratory of Low Dimensional Quantum Physics, Department of Physics, Tsinghua University , Beijing 100084 , China

2. Institute of Physics, Chinese Academy of Sciences , Beijing 100190 , China

3. School of Materials Science and Engineering, Tsinghua University , Beijing 100084 , China

4. Beijing Academy of Quantum Information Sciences , Beijing 100193 , China

5. Frontier Science Center for Quantum Information , Beijing 100084 , China

6. Hefei National Laboratory , Hefei 230088 , China

7. Southern University of Science and Technology , Shenzhen 518055 , China

Abstract

ABSTRACT The intrinsic magnetic topological insulator MnBi2Te4 provides a feasible pathway to the high-temperature quantum anomalous Hall (QAH) effect as well as various novel topological quantum phases. Although quantized transport properties have been observed in exfoliated MnBi2Te4 thin flakes, it remains a big challenge to achieve molecular beam epitaxy (MBE)-grown MnBi2Te4 thin films even close to the quantized regime. In this work, we report the realization of quantized anomalous Hall resistivity in MBE-grown MnBi2Te4 thin films with the chemical potential tuned by both controlled in situ oxygen exposure and top gating. We find that elongated post-annealing obviously elevates the temperature to achieve quantization of the Hall resistivity, but also increases the residual longitudinal resistivity, indicating a picture of high-quality QAH puddles weakly coupled by tunnel barriers. These results help to clarify the puzzles in previous experimental studies on MnBi2Te4 and to find a way out of the big difficulty in obtaining MnBi2Te4 samples showing quantized transport properties.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Innovation Program for Quantum Science and Technology

Publisher

Oxford University Press (OUP)

Subject

Multidisciplinary

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