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Collective coordinate models of domain wall motion in perpendicularly magnetized systems under the spin hall effect and longitudinal fields

机译:自旋霍尔效应和纵向场作用下垂直磁化系统中畴壁运动的集体坐标模型

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摘要

Recent studies on heterostructures of ultrathin ferromagnets sandwiched between a heavy metal layer and an oxide have highlighted the importance of spin-orbit coupling (SOC) and broken inversion symmetry in domain wall (DW) motion. Specifically, chiral DWs are stabilized in these systems due to the Dzyaloshinskii-Moriya interaction (DMI). SOC can also lead to enhanced current induced DW motion, with the spin Hall effect (SHE) suggested as the dominant mechanism for this observation. The efficiency of SHE driven DW motion depends on the internal magnetic structure of the DW, which could be controlled using externally applied longitudinal in-plane fields. In this work, micromagnetic simulations and collective coordinate models are used to study current-driven DW motion under longitudinal in-plane fields in perpendicularly magnetized samples with strong DMI. Several extended collective coordinate models are developed to reproduce the micromagnetic results. While these extended models show improvements over traditional models of this kind, there are still discrepancies between them and micromagnetic simulations which require further work.
机译:最近,关于夹在重金属层和氧化物之间的超薄铁磁体的异质结构的研究突显了自旋轨道耦合(SOC)和破碎的反转对称性在畴壁(DW)运动中的重要性。具体地,由于Dzyaloshinskii-Moriya相互作用(DMI),手性DW在这些系统中稳定。 SOC还可导致增强的电流感应DW运动,其中自旋霍尔效应(SHE)被认为是该观察的主要机制。 SHE驱动的DW运动的效率取决于DW的内部磁结构,可以使用外部施加的纵向面内磁场来控制它。在这项工作中,微磁模拟和集体坐标模型用于研究具有强DMI的垂直磁化样品在纵向面内磁场下电流驱动的DW运动。开发了几种扩展的集体坐标模型以重现微磁结果。尽管这些扩展模型显示出对此类传统模型的改进,但它们与微磁仿真之间仍然存在差异,需要进一步的工作。

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