论文标题

确定旋转轨道扭矩和界面dzyaloshinskii-moriya相互作用的非单调厚度依赖性的起源

Identifying the origin of the non-monotonic thickness dependence of spin-orbit torques and interfacial Dzyaloshinskii-Moriya interaction in a ferrimagnetic insulator heterostructure

论文作者

Ding, Shilei, Baldrati, Lorenzo, Ross, Andrew, Ren, Zengyao, Wu, Rui, Becker, Sven, Yang, Jinbo, Jakob, Gerhard, Brataas, Arne, Kläui, Mathias

论文摘要

通过自旋轨道扭矩(SOT)对磁性的电气操纵有望有效的自旋装置。在包含磁绝缘体和重金属的系统中,仅在最近才开始研究SOT,尤其是在具有界面Dzyaloshinskii-Moriya相互作用(IDMI)的系统中。在这里,我们在一系列具有变化的Tmig和Pt厚度的异质结构中定量研究了SOT效率和IDMI / Thulium Iron Garnet(Tmig) / Platinum(PT)异质结构。我们发现,非单调的SOT效率随磁层厚度的函数与简单的界面SOT机制所期望的1/厚度依赖性不一致。此外,考虑到TMIG的绝缘性质,我们的结果无法通过为金属磁体建立的SOT机制来解释,其中横向电荷旋转电流可以在磁性层中注入和倾向。相反,我们可以通过基于界面自旋混合电导的模型来解释这种非单调行为,该模型通过确定TMIG / PT界面处反射的旋转和旋转电子的相位差异,该模型受厚度依赖性交换能量的影响。通过研究PT厚度依赖性,我们发现GGG / TMIG / PT的有效DMI不取决于PT厚度,这表明GGG / TMIG界面是该系统中IDMI的来源。我们的工作表明,SOT和DMI可以源自两个不同的接口,这可以独立优化DMI和SOT,用于具有低阻尼磁绝缘体的晚期手性旋转器。

Electrical manipulation of magnetism via spin-orbit torques (SOTs) promises efficient spintronic devices. In systems comprising magnetic insulators and heavy metals, SOTs have started to be investigated only recently, especially in systems with interfacial Dzyaloshinskii-Moriya interaction (iDMI). Here, we quantitatively study the SOT efficiency and iDMI in a series of gadolinium gallium garnet (GGG) / thulium iron garnet (TmIG) / platinum (Pt) heterostructures with varying TmIG and Pt thicknesses. We find that the non-monotonic SOT efficiency as a function of the magnetic layer thickness is not consistent with the 1/thickness dependence expected from a simple interfacial SOT mechanism. Moreover, considering the insulating nature of TmIG, our results cannot be explained by the SOT mechanism established for metallic magnets where the transverse charge spin current can inject and dephase in the magnetic layers. Rather we can explain this non-monotonic behavior by a model based on the interfacial spin mixing conductance that is affected by the thickness-dependent exchange splitting energy by determining the phase difference of the reflected spin-up and spin-down electrons at the TmIG / Pt interface. By studying the Pt thickness dependence, we find that the effective DMI for GGG / TmIG / Pt does not depend on the Pt thickness, which indicates that the GGG / TmIG interface is the source of the iDMI in this system. Our work demonstrates that SOT and DMI can originate from two different interfaces, which enables independent optimization of DMI and SOT for advanced chiral spintronics with low damping magnetic insulators.

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