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具有自发面内交换偏置的IrMn/CoTb双层膜中无场自旋轨道转矩诱导的磁化翻转

Field-Free Spin-Orbit Torque-Induced Magnetization Switching in the IrMn/CoTb Bilayers with a Spontaneous In-Plane Exchange Bias.

作者信息

Liu Ruobai, Chen Jiarui, Li Zhuoyi, Lu Xianyang, Lu Yu, Liu Tianyu, Zhang Yiyang, Yuan Yuan, Wei Lujun, Wu Di, You Biao, Zhang Wei, Du Jun

机构信息

National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University, Nanjing 210093, People's Republic of China.

Jiangsu Provincial Key Laboratory of Advanced Photonic and Electronic Materials, School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2023 Oct 24. doi: 10.1021/acsami.3c12061.

Abstract

Spin-orbit torque (SOT)-induced magnetization switching in ferrimagnetic materials is promising for application in a new generation of information storage devices. Here, we demonstrate SOT-induced field-free magnetization switching of the perpendicularly magnetized CoTb ferrimagnet layer in the IrMn/CoTb bilayer, in which the in-plane magnetic inversion symmetry is broken by a spontaneous in-plane exchange bias (IEB) established by isothermal crystallization of the IrMn layer. We obtain a significant SOT effective field acting on the CoTb layer and a large effective spin Hall angle in this system, derived by the second harmonic voltage measurement method. Moreover, the IrMn/CoTb bilayer demonstrates multistate magnetic switching behavior with different amplitudes of current pulses at zero field, which can mimic the synaptic weight updates in the neuromorphic network. These findings make the IrMn/CoTb bilayer with spontaneous IEB a promising candidate for potential applications in multilevel storage and neuromorphic computing.

摘要

亚铁磁材料中自旋轨道矩(SOT)诱导的磁化翻转在新一代信息存储设备中具有应用前景。在此,我们展示了在IrMn/CoTb双层结构中垂直磁化的CoTb亚铁磁体层的SOT诱导的无场磁化翻转,其中面内磁反转对称性被IrMn层等温结晶建立的自发面内交换偏置(IEB)打破。通过二次谐波电压测量方法,我们在该系统中获得了作用于CoTb层的显著SOT有效场和较大的有效自旋霍尔角。此外,IrMn/CoTb双层在零场下通过不同幅度的电流脉冲表现出多态磁开关行为,这可以模拟神经形态网络中的突触权重更新。这些发现使具有自发IEB的IrMn/CoTb双层成为多级存储和神经形态计算潜在应用的有前途的候选材料。

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