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反铁磁体-重金属异质结构中自旋轨道转矩的量化

Quantifying Spin-Orbit Torques in Antiferromagnet-Heavy-Metal Heterostructures.

作者信息

Cogulu Egecan, Zhang Hantao, Statuto Nahuel N, Cheng Yang, Yang Fengyuan, Cheng Ran, Kent Andrew D

机构信息

Center for Quantum Phenomena, Department of Physics, New York University, New York 10003, USA.

Department of Electrical and Computer Engineering, University of California, Riverside, California 92521, USA.

出版信息

Phys Rev Lett. 2022 Jun 17;128(24):247204. doi: 10.1103/PhysRevLett.128.247204.

Abstract

The effect of spin currents on the magnetic order of insulating antiferromagnets (AFMs) is of fundamental interest and can enable new applications. Toward this goal, characterizing the spin-orbit torques (SOTs) associated with AFM-heavy-metal (HM) interfaces is important. Here we report the full angular dependence of the harmonic Hall voltages in a predominantly easy-plane AFM, epitaxial c-axis oriented α-Fe_{2}O_{3} films, with an interface to Pt. By modeling the harmonic Hall signals together with the α-Fe_{2}O_{3} magnetic parameters, we determine the amplitudes of fieldlike and dampinglike SOTs. Out-of-plane field scans are shown to be essential to determining the dampinglike component of the torques. In contrast to ferromagnetic-heavy-metal heterostructures, our results demonstrate that the fieldlike torques are significantly larger than the dampinglike torques, which we correlate with the presence of a large imaginary component of the interface spin-mixing conductance. Our work demonstrates a direct way of characterizing SOTs in AFM-HM heterostructures.

摘要

自旋电流对绝缘反铁磁体(AFM)磁序的影响具有根本重要性,并且能够催生新的应用。为实现这一目标,表征与AFM-重金属(HM)界面相关的自旋轨道转矩(SOT)至关重要。在此,我们报告了在主要为易平面AFM、外延c轴取向的α-Fe₂O₃薄膜与Pt形成的界面中,谐波霍尔电压的完整角度依赖性。通过将谐波霍尔信号与α-Fe₂O₃的磁参数一起建模,我们确定了类场和类阻尼SOT的幅度。结果表明,面外场扫描对于确定转矩的类阻尼分量至关重要。与铁磁-重金属异质结构不同,我们的结果表明类场转矩显著大于类阻尼转矩,我们将此与界面自旋混合电导的大虚部的存在相关联。我们的工作展示了一种表征AFM-HM异质结构中SOT的直接方法。

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