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The spin Nernst effect in tungsten

机译:钨的自旋能斯特效应

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The spin Hall effect allows the generation of spin current when charge current is passed along materials with large spin-orbit coupling. It has been recently predicted that heat current in a nonmagnetic metal can be converted into spin current via a process referred to as the spin Nernst effect. We report the observation of the spin Nernst effect in W. In W/CoFeB/MgO heterostructures, we find changes in the longitudinal and transverse voltages with magnetic field when temperature gradient is applied across the film. The field dependence of the voltage resembles that of the spin Hall magnetoresistance. A comparison of the temperature gradient–induced voltage and the spin Hall magnetoresistance allows direct estimation of the spin Nernst angle. We find the spin Nernst angle of W to be similar in magnitude but opposite in sign to its spin Hall angle. Under an open-circuit condition, this sign difference results in the spin current generation larger than otherwise. These results highlight the distinct characteristics of the spin Nernst and spin Hall effects, providing pathways to explore materials with unique band structures that may generate large spin current with high efficiency.
机译:当电荷电流通过具有大自旋轨道耦合的材料时,自旋霍尔效应允许产生自旋电流。最近已经预测,可以通过称为自旋能斯特效应的过程将非磁性金属中的热电流转换为自旋电流。我们报道了在W中自旋能斯特效应的观察结果。在W / CoFeB / MgO异质结构中,当跨膜施加温度梯度时,我们发现纵向和横向电压随磁场的变化。电压的场依赖性类似于自旋霍尔磁电阻的场依赖性。将温度梯度感应电压与自旋霍尔磁阻进行比较,可以直接估算自旋能斯特角。我们发现W的自旋能斯特角在大小上与其自旋霍尔角在符号上相反。在开路条件下,该符号差导致自旋电流的产生比其他情况更大。这些结果突出了自旋能斯特效应和自旋霍尔效应的独特特性,为探索具有独特能带结构的材料提供了途径,这些材料可能高效地产生大的自旋电流。

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