论文标题

HO/FECOGD/β-W多层中的磁通型和磁纹理

Magneto-transport and magnetic textures in Ho/FeCoGd/β-W multilayers

论文作者

Budhani, Ramesh C., Sharma, Vinay, Negusse, Ezana, Casey, Jacob, Pathak, Arjun K., Sadowski, Jerzy T., Kirby, Brian

论文摘要

磁性多层中界面dzyaloshinskii-moriya相互作用(DMI)的增强导致拓扑自旋纹理(如手性域壁和天空)的稳定。在这里,我们报告了界面驱动的磁相互作用在一个独特设计的多层中的评估,其中将两个AFM耦合的sublattices的每个磁层和4F矩的磁层夹在β-Tungsten和Holmium的层之间,其旋转霍尔角的旋转霍尔角度很大,但在符号中相反。这些多层的原子和磁性周期性是通过极化中子反射率测量以及使用X射线光电显微镜为零remance的迷路结构域自旋纹理确定的。在广泛的温度(t)和磁场(t)和磁场(h)上的静态磁化(M(t,h))以及静态磁化(M(t,h))的测量以及在t> 350 K之间即将进行的3D和4F sublattices的静态磁化(M(t,h))的测量值。 NΩ.m)和负异常ρ_{xy}(t,h),这是由于4F矩与外部磁场的平行比对而产生的。在200K以上的温度下,磁力化发生在平面外各向异性的200K中,在ρ_{xy}(t,h),ρ_{xx}(t,h)和m(t,h)之间看不到明显的缩放。 ρ_{xy}在t> 200k上的场扫描在磁饱和附近显示出独特的尖端。这些大厅的数据已在模型的框架中进行了分析,在模型的框架中,对ρ_{xy}的独特拓扑贡献越过3D和4F磁性弹药的异常霍尔电阻率。建议这种明显的拓扑作用是由界面DMI引起的,并在3D和4F晶格几乎补偿的温度状态下主导ρ_{xy}(t,h)。

The enhancement of interfacial Dzyaloshinskii-Moriya Interaction (DMI) in magnetic multilayers results in the stabilization of topological spin textures like chiral domain walls and skyrmions. Here we report on the evaluation of interface-driven magnetic interactions in a uniquely designed multilayer where each magnetic layer of two AFM coupled sublattices of 3d and 4f moments is sandwiched between the layers of β-tungsten and holmium whose spin Hall angles are large but opposite in sign. The atomic and magnetic periodicity of these multilayers is established by polarized neutron reflectivity measurements and the presence of a labyrinth domain spin texture of zero remanence with x-ray photoelectron microscopy. Measurements of the Hall resistivity (ρ_{xy}(T, H)) together with static magnetization (M(T,H)) over a broad range of temperature (T) and magnetic field (H) indicate impending compensation between 3d and 4f sublattices at T>350 K. These multilayers are characterized by a small (0.04 %) but positive magnetoresistance indicative of interface enhance scattering and a large (40 nΩ.m) and negative anomalous ρ_{xy}(T,H) which results from a parallel alignment of 4f moments with the external magnetic field. No distinct scaling is seen between ρ_{xy}(T,H), ρ_{xx}(T, H) and M(T,H) at temperatures above 200K where the magnetization develops out-of-plane anisotropy. The field scans of ρ_{xy} at T>200K show a distinct cusp in the vicinity of magnetic saturation. These Hall data have been analyzed in the framework of a model where a distinct topological contribution to ρ_{xy} rides over the anomalous Hall resistivities of the 3d and 4f magnetic sublattices. It is suggested that this apparent topological effect results from an interfacial DMI and dominates ρ_{xy}(T,H) in the temperature regime where the 3d and 4f lattices are nearly compensated.

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