论文标题

磁接近效应在PT中的影响对通过X射线谐振磁反射率研究的PT/CO/TA Trilayer的总磁矩

Impact of the magnetic proximity effect in Pt on the total magnetic moment of Pt/Co/Ta trilayers studied by x-ray resonant magnetic reflectivity

论文作者

Moskaltsova, Anastasiia, Krieft, Jan, Graulich, Dominik, Matalla-Wagner, Tristan, Kuschel, Timo

论文摘要

在这项工作中,我们研究了PT中磁接近效应(MPE)的影响,该磁力效果对薄膜三层系统的总磁矩,该系统由相邻的重金属(HMS)PT和TA组成。我们研究了具有不同堆叠顺序的Trilayer Systems HM1/FM/HM2以及没有任何MPE的参考双层。 X射线谐振磁反射率(XRMR)是探测引起磁性的强大工具,尤其是当埋在多层界面的界面上时。通过使用XRMR,我们能够获得结构,光学和磁参数的磁深度曲线。通过将实验数据与高斯样的磁磁具曲线拟合,将结构粗糙度考虑到界面处,我们可以提取自旋偏振层的磁矩。将所获得的力矩与样品的总矩进行比较,我们可以确定MPE对系统总磁矩的影响。此类信息对于分析旋转传输实验(包括自旋轨道扭矩和旋转霍尔角度测量)可能至关重要,其中必须考虑饱和磁化$ m_s $。因此,通过结合磁化测量和XRMR方法,我们能够完整地了解包含自旋偏振PT的这些三层系统中的磁矩分布。

In this work, we study the influence of the magnetic proximity effect (MPE) in Pt on the total magnetic moment of thin film trilayer systems consisting of the ferromagnet (FM) Co adjacent to the heavy metals (HMs) Pt and Ta. We investigate the trilayer systems HM1/FM/HM2 with different stacking order as well as a reference bilayer without any MPE. X-ray resonant magnetic reflectivity (XRMR) is a powerful tool to probe induced magnetism, especially when buried at interfaces in a multilayer. By using XRMR, we are able to obtain magnetic depth profiles of the structural, optical and magnetic parameters. By fitting the experimental data with a Gaussian-like magnetooptic profile taking the structural roughness at the interface into account, we can extract the magnetic moment of the spin-polarized layer. Comparing the obtained moments to the measured total moment of the sample, we can determine the impact of the MPE on the total magnetic moment of the system. Such information can be critical for analyzing spin transport experiments, including spin-orbit torque and spin Hall angle measurements, where the saturation magnetization $M_s$ has to be taken into account. Therefore, by combining magnetization measurements and XRMR methods we were able to get a complete picture of the magnetic moment distribution in these trilayer systems containing spin-polarized Pt.

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