论文标题
巨大的体积旋转扭矩和有效的电气开关,在具有强垂直磁各向异性的单个铁磁FETB层中
Giant bulk spin-orbit torque and efficient electrical switching in single ferrimagnetic FeTb layers with strong perpendicular magnetic anisotropy
论文作者
论文摘要
有效地操纵抗磁性耦合的材料,这些材料具有强大的垂直磁各向异性(PMA),这对于低功率,快速,密集的磁性存储和计算引起了极大的兴趣。在这里,我们报告了一个独特的,巨大的散装阻尼状的旋转轨道扭矩,在强PMA铁磁Fe100-XTBX单层中,它是积分友好的(成分 - 均匀,无定形,溅射 - 沉积)。对于足够厚的层,该总扭矩的每单位层厚度的效率是恒定的ξ_dl^j/t,创纪录的最高值为0.036nm-1,并且具有阻尼的扭矩效率ξ_dl^j可实现厚层的非常大的厚度值,最高300%的90 nm层。这种巨大的巨大扭矩本身会切换数十个nm厚的Fe100-XTBX层,在当前密度低至几mA/cm2的电流密度下具有非常强的PMA且高强化。出乎意料的是,对于给定的层厚度,ξ_dl^j显示出强大的组成依赖性,并且在总角动量平行于磁化而不是反拉力的情况下对组成变为负。我们对巨大的自旋扭矩效率和有趣的扭矩补偿相关的发现将刺激对多种铁磁宿主中这种独特的自旋轨道现象的研究。这项工作铺平了一个有希望的途径,用于开发超功率,快速,密集的铁磁存储和计算设备。
Efficient manipulation of antiferromagnetically coupled materials that are integration-friendly and have strong perpendicular magnetic anisotropy (PMA) is of great interest for low-power, fast, dense magnetic storage and computing. Here, we report a distinct, giant bulk damping-like spin-orbit torque in strong-PMA ferrimagnetic Fe100-xTbx single layers that are integration-friendly (composition-uniform, amorphous, sputter-deposited). For sufficiently-thick layers, this bulk torque is constant in the efficiency per unit layer thickness, ξ_DL^j/t, with a record-high value of 0.036nm-1, and the dampinglike torque efficiency ξ_DL^j achieves very large values for thick layers, up to 300% for 90 nm layers. This giant bulk torque by itself switches tens of nm thick Fe100-xTbx layers that have very strong PMA and high coercivity at current densities as low as a few MA/cm2. Surprisingly, for a given layer thickness, ξ_DL^j shows strong composition dependence and becomes negative for composition where the total angular momentum is oriented parallel to the magnetization rather than antiparallel. Our findings of giant bulk spin torque efficiency and intriguing torque-compensation correlation will stimulate study of such unique spin-orbit phenomena in a variety of ferrimagnetic hosts. This work paves a promising avenue for developing ultralow-power, fast, dense ferrimagnetic storage and computing devices.