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Large spin-orbit torque efficiency enhanced by magnetic structure of collinear antiferromagnet IrMn

机译:共线反铁磁体IrMn的磁性结构提高了大自旋轨道的转矩效率

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摘要

Spin-orbit torque (SOT) offers promising approaches to developing energy-efficient memory devices by electric switching of magnetization. Compared to other SOT materials, metallic antiferromagnet (AFM) potentially allows the control of SOT through its magnetic structure. Here, combining the results from neutron diffraction and spin-torque ferromagnetic resonance experiments, we show that the magnetic structure of epitaxially grown L10-IrMn (a collinear AFM) is distinct from the widely presumed bulk one. It consists of twin domains, with the spin axes orienting toward [111] and [−111], respectively. This unconventional magnetic structure is responsible for much larger SOT efficiencies up to 0.60 ± 0.04, compared to 0.083 ± 0.002 for the polycrystalline IrMn. Furthermore, we reveal that this magnetic structure induces a large isotropic bulk contribution and a comparable anisotropic interfacial contribution to the SOT efficiency. Our findings shed light on the critical roles of bulk and interfacial antiferromagnetism to SOT generated by metallic AFM.
机译:自旋轨道转矩(SOT)提供了通过磁化的电开关来开发节能存储设备的有前途的方法。与其他SOT材料相比,金属反铁磁体(AFM)可能允许通过其磁性结构控制SOT。在这里,结合中子衍射和自旋扭矩铁磁共振实验的结果,我们表明,外延生长的L10-IrMn(共线AFM)的磁性结构不同于广泛假定的大块体。它由双畴组成,其自旋轴分别朝向[111]和[-111]。与多晶IrMn的0.083±0.002相比,这种非常规的磁性结构可导致高达0.60±0.04的更大的SOT效率。此外,我们揭示了这种磁性结构诱导了大的各向同性块体贡献和可比的各向异性界面对SOT效率的贡献。我们的发现揭示了块状和界面反铁磁性对金属原子力显微镜产生的SOT的关键作用。

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