A van der Waals antiferromagnetic topological insulator with weak interlayer magnetic coupling

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作者
Chaowei Hu
Kyle N. Gordon
Pengfei Liu
Jinyu Liu
Xiaoqing Zhou
Peipei Hao
Dushyant Narayan
Eve Emmanouilidou
Hongyi Sun
Yuntian Liu
Harlan Brawer
Arthur P. Ramirez
Lei Ding
Huibo Cao
Qihang Liu
Dan Dessau
Ni Ni
机构
[1] University of California,Department of Physics and Astronomy and California NanoSystems Institute
[2] University of Colorado,Department of Physics
[3] Southern University of Science and Technology,Shenzhen Institute for Quantum Science and Technology and Department of Physics
[4] University of California,Department of Physics
[5] Oak Ridge National Laboratory,Neutron Scattering Division
[6] Southern University of Science and Technology,Guangdong Provincial Key Laboratory for Computational Science and Material Design
[7] University of Colorado,Center for Experiments on Quantum Materials
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摘要
Magnetic topological insulators (TI) provide an important material platform to explore quantum phenomena such as quantized anomalous Hall effect and Majorana modes, etc. Their successful material realization is thus essential for our fundamental understanding and potential technical revolutions. By realizing a bulk van der Waals material MnBi4Te7 with alternating septuple [MnBi2Te4] and quintuple [Bi2Te3] layers, we show that it is ferromagnetic in plane but antiferromagnetic along the c axis with an out-of-plane saturation field of ~0.22 T at 2 K. Our angle-resolved photoemission spectroscopy measurements and first-principles calculations further demonstrate that MnBi4Te7 is a Z2 antiferromagnetic TI with two types of surface states associated with the [MnBi2Te4] or [Bi2Te3] termination, respectively. Additionally, its superlattice nature may make various heterostructures of [MnBi2Te4] and [Bi2Te3] layers possible by exfoliation. Therefore, the low saturation field and the superlattice nature of MnBi4Te7 make it an ideal system to investigate rich emergent phenomena.
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