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Influence of intermixing at the Ta/CoFeB interface on spin Hall angle in Ta/CoFeB/MgO heterostructures

机译:Ta / CoFeB / MgO异质结构中Ta / CoFeB界面混合对自旋霍尔角的影响

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摘要

When a current is passed through a non-magnetic metal with strong spin-orbit coupling, an orthogonal spin current is generated. This spin current can be used to switch the magnetization of an adjacent ferromagnetic layer or drive its magnetization into continuous precession. The interface, which is not necessarily sharp, and the crystallographic structure of the nonmagnetic metal can both affect the strength of current-induced spin-orbit torques. Here, we investigate the effects of interface intermixing and film microstructure on spin-orbit torques in perpendicularly magnetized Ta/Co40Fe40B20/MgO trilayers with different Ta layer thickness (5 nm, 10 nm, 15 nm), greater than the spin diffusion length. Effective spin-orbit torques are determined from harmonic Hall voltage measurements performed at temperatures ranging from 20 K to 300 K. We account for the temperature dependence of damping-like and field-like torques by including an additional contribution from the Ta/CoFeB interface in the spin diffusion model. Using this approach, the temperature variations of the spin Hall angle in the Ta underlayer and at the Ta/CoFeB interface are determined separately. Our results indicate an almost temperature-independent spin Hall angle of θSHN0.2 in Ta and a strongly temperature-dependent θSHN for the intermixed Ta/CoFeB interface.
机译:当电流通过具有强自旋轨道耦合的非磁性金属时,会产生正交自旋电流。该自旋电流可用于切换相邻铁磁层的磁化或驱动其铁磁化为连续进动。非磁性金属的界面(不一定是尖锐的)和晶体结构都会影响电流感应的自旋轨道扭矩的强度。在这里,我们研究了界面混合和薄膜微结构对具有不同Ta层厚度(5 nm,10 nm,15 nm)且大于自旋扩散长度的垂直磁化Ta / Co40Fe40B20 / MgO三层的自旋​​轨道转矩的影响。有效的自旋转矩是由在20 K至300 K的温度范围内进行的谐波霍尔电压测量确定的,我们通过考虑Ta / CoFeB界面中的附加贡献来考虑类阻尼和类似场转矩的温度依赖性。自旋扩散模型。使用这种方法,可以分别确定Ta底层和Ta / CoFeB界面中自旋霍尔角的温度变化。我们的结果表明 < mrow> θ SH N - < Ta中的mn mathvariant =“ bold”> 0.2 和高度依赖温度的 θ SH N 用于混合的Ta / CoFeB界面。

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