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Giant thermal spin-torque–assisted magnetic tunnel junction switching

机译:巨大的热自旋转矩辅助磁隧道结切换

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摘要

Spin-polarized charge currents induce magnetic tunnel junction (MTJ) switching by virtue of spin-transfer torque (STT). Recently, by taking advantage of the spin-dependent thermoelectric properties of magnetic materials, novel means of generating spin currents from temperature gradients, and their associated thermal-spin torques (TSTs), have been proposed, but so far these TSTs have not been large enough to influence MTJ switching. Here we demonstrate significant TSTs in MTJs by generating large temperature gradients across ultrathin MgO tunnel barriers that considerably affect the switching fields of the MTJ. We attribute the origin of the TST to an asymmetry of the tunneling conductance across the zero-bias voltage of the MTJ. Remarkably, we estimate through magneto-Seebeck voltage measurements that the charge currents that would be generated due to the temperature gradient would give rise to STT that is a thousand times too small to account for the changes in switching fields that we observe.
机译:自旋极化的电荷电流借助自旋传递转矩(STT)引起磁隧道结(MTJ)切换。最近,通过利用磁性材料的自旋相关的热电特性,提出了一种从温度梯度产生自旋电流及其相关的热自旋转矩(TST)的新颖方法,但是到目前为止,这些TST并不大足以影响MTJ切换。在这里,我们通过在超薄MgO隧道势垒之间产生较大的温度梯度来证明MTJ中的显着TST,这些温度梯度会极大地影响MTJ的开关场。我们将TST的起源归因于MTJ零偏置电压两端的隧穿电导的不对称性。值得注意的是,我们通过磁塞贝克电压测量估计,由于温度梯度而产生的充电电流将使STT升高一千倍,以至于无法考虑我们观察到的开关场的变化。

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