Gate-tunable spin waves in antiferromagnetic atomic bilayers

被引:0
|
作者
Xiao-Xiao Zhang
Lizhong Li
Daniel Weber
Joshua Goldberger
Kin Fai Mak
Jie Shan
机构
[1] Kavli Institute at Cornell for Nanoscale Science,Department of Physics
[2] University of Florida,School of Applied and Engineering Physics
[3] Cornell University,Department of Chemistry and Biochemistry
[4] Ohio State University,Laboratory of Atomic and Solid State Physics
[5] Cornell University,undefined
来源
Nature Materials | 2020年 / 19卷
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摘要
Remarkable properties of two-dimensional (2D) layer magnetic materials, which include spin filtering in magnetic tunnel junctions and the gate control of magnetic states, were demonstrated recently1–12. Whereas these studies focused on static properties, dynamic magnetic properties, such as excitation and control of spin waves, remain elusive. Here we investigate spin-wave dynamics in antiferromagnetic CrI3 bilayers using an ultrafast optical pump/magneto-optical Kerr probe technique. Monolayer WSe2 with a strong excitonic resonance was introduced on CrI3 to enhance the optical excitation of spin waves. We identified subterahertz magnetic resonances under an in-plane magnetic field, from which the anisotropy and interlayer exchange fields were determined. We further showed tuning of the antiferromagnetic resonances by tens of gigahertz through electrostatic gating. Our results shed light on magnetic excitations and spin dynamics in 2D magnetic materials, and demonstrate their potential for applications in ultrafast data storage and processing.
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页码:838 / 842
页数:4
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