Layer-resolved magnetic proximity effect in van der Waals heterostructures

被引:0
|
作者
Ding Zhong
Kyle L. Seyler
Xiayu Linpeng
Nathan P. Wilson
Takashi Taniguchi
Kenji Watanabe
Michael A. McGuire
Kai-Mei C. Fu
Di Xiao
Wang Yao
Xiaodong Xu
机构
[1] University of Washington,Department of Physics
[2] National Institute for Materials Science,Department of Electrical and Computer Engineering
[3] Materials Science and Technology Division,Department of Physics
[4] Oak Ridge National Laboratory,Department of Physics and Center of Theoretical and Computational Physics
[5] University of Washington,Department of Materials Science and Engineering
[6] Carnegie Mellon University,undefined
[7] University of Hong Kong,undefined
[8] University of Washington,undefined
来源
Nature Nanotechnology | 2020年 / 15卷
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摘要
Magnetic proximity effects are integral to manipulating spintronic1,2, superconducting3,4, excitonic5 and topological phenomena6–8 in heterostructures. These effects are highly sensitive to the interfacial electronic properties, such as electron wavefunction overlap and band alignment. The recent emergence of magnetic two-dimensional materials opens new possibilities for exploring proximity effects in van der Waals heterostructures9–12. In particular, atomically thin CrI3 exhibits layered antiferromagnetism, in which adjacent ferromagnetic monolayers are antiferromagnetically coupled9. Here we report a layer-resolved magnetic proximity effect in heterostructures formed by monolayer WSe2 and bi/trilayer CrI3. By controlling the individual layer magnetization in CrI3 with a magnetic field, we show that the spin-dependent charge transfer between WSe2 and CrI3 is dominated by the interfacial CrI3 layer, while the proximity exchange field is highly sensitive to the layered magnetic structure as a whole. In combination with reflective magnetic circular dichroism measurements, these properties allow the use of monolayer WSe2 as a spatially sensitive magnetic sensor to map out layered antiferromagnetic domain structures at zero magnetic field as well as antiferromagnetic/ferromagnetic domains at finite magnetic fields. Our work reveals a way to control proximity effects and probe interfacial magnetic order via van der Waals engineering13.
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页码:187 / 191
页数:4
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