论文标题

旋转轨道摩尼克

Spin-orbit-torque magnonics

论文作者

Demidov, V. E., Urazhdin, S., Anane, A., Cros, V., Demokritov, S. O.

论文摘要

通过旋转轨道扭矩的出现,使用传播旋转波进行纳米级传播和信息处理的镁领域已显着提高。后一种现象可以允许一个人克服宏伟设备的两个主要缺点 - 电信号转换为旋转波信号的低能效率,以及薄膜波导结构中自旋波的快速空间衰减。乍一看,自旋轨道扭曲的旋转波的激发和扩增似乎很简单。然而,最近的研究表明,在自旋电流与动态磁模式的相互作用中缺乏模式选择性,而动态非线性现象的发作则代表了重要的障碍。在这里,我们基于在具有垂直磁各向异性的磁系统中非线性自旋波相互作用的抑制,讨论了克服这些局限性的可能途径。我们表明,这种方法能够有效激发相干磁化动力学并在扩展的空间区域中传播自旋波,并有望实施实际实施自旋波传播损失的完全补偿。

The field of magnonics, which utilizes propagating spin waves for nano-scale transmission and processing of information, has been significantly advanced by the advent of the spin-orbit torque. The latter phenomenon can allow one to overcome two main drawbacks of magnonic devices - low energy efficiency of conversion of electrical signals into spin wave signals, and fast spatial decay of spin waves in thin-film waveguiding structures. At first glance, the excitation and amplification of spin waves by spin-orbit torques can seem to be straightforward. Recent research indicates, however, that the lack of the mode-selectivity in the interaction of spin currents with dynamic magnetic modes and the onset of dynamic nonlinear phenomena represent significant obstacles. Here, we discuss the possible route to overcoming these limitations, based on the suppression of nonlinear spin-wave interactions in magnetic systems with perpendicular magnetic anisotropy. We show that this approach enables efficient excitation of coherent magnetization dynamics and propagating spin waves in extended spatial regions, and is expected to enable practical implementation of complete compensation of spin-wave propagation losses.

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