Direct visualization of surface spin flip transition in MnBi<sub>4</sub>Te<sub>7</sub>
ORAL
Abstract
The intrinsic antiferromagnetic topological insulator family MnBi2nTe3n+1 (MBT) provides an ideal platform to realize exotic quantum transport such as QAHE and Axion insulator state1,2. Here, we focus to the n=2 member, MnBi4Te7, which consists of alternating MnBi2Te4 and Bi2Te3 layers with smaller interlayer coupling. Using cryogenic magnetic force microscopy, we observed termination-dependent magnetic contrast across both the domain wall and the step confirming the persistence of A-type order at the surface. Furthermore, we discovered a first-order surface spin flip transition in MnBi4Te7, which has never been reported in natural antiferromagnet. Our observation can be explained by a revised Mills’ Model with reduced exchange interaction and enhanced surface magnetization. Direct visualization of surface spin-flip transition not only initiates the exploration of surface transition in potential functional antiferromagnets, but also pave the way for realizing quantized transport in ultra-thin films of MnBi4Te7 and other MBT superlattices.
1. Liu et al. Nature Materials, 19, 522–527 (2020).
2. Deng et al., Science 367, 895–900 (2020).
3. Yu-Jie Hao et al. Phys. Rev. X 9, 041038 (2019).
4. Paul M. Sass et al. Phys. Rev. Lett 125, 037201 (2020).
1. Liu et al. Nature Materials, 19, 522–527 (2020).
2. Deng et al., Science 367, 895–900 (2020).
3. Yu-Jie Hao et al. Phys. Rev. X 9, 041038 (2019).
4. Paul M. Sass et al. Phys. Rev. Lett 125, 037201 (2020).
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Presenters
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Wenbo Ge
Rutgers University
Authors
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Wenbo Ge
Rutgers University
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Jiwoong Kim
Rutgers University
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David Vanderbilt
Rutgers University, Rutgers University, New Brunswick
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Jiaqiang Yan
Oak Ridge National Lab, Oak Ridge National Laboratory, ORNL
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Weida Wu
Rutgers University, Rutgers University, New Brunswick