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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Static magnetic proximity effect in Pt/Ni_(1-x)Fe_x bilayers investigated by x-ray resonant magnetic reflectivity
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Static magnetic proximity effect in Pt/Ni_(1-x)Fe_x bilayers investigated by x-ray resonant magnetic reflectivity

机译:通过X射线共振磁反射率研究Pt / Ni_(1-x)Fe_x双层中的静态磁邻近效应

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摘要

We present x-ray resonant magnetic reflectivity (XRMR) as a very sensitive tool to detect proximity induced interface spin polarization in Pt/FM heterostructures. Different XRMR experiments are carried out and the results are evaluated for their dependence on the magneto-optical depth profile, the photon energy, the optical parameters, and the ferromagnetic material. We demonstrate that a detailed analysis of the reflected x-ray intensity gives insight into the spatial distribution of the spin polarization of a nonmagnetic metal across the interface to a ferromagnetic layer. The evaluation of the experimental results with simulations based on optical data from ab initio calculations provides the induced magnetic moment per Pt atom in the spin-polarized volume adjacent to the ferromagnet. For a series with different ferromagnetic materials consisting of Pt/Fe, Pt/Ni_(33)Fe_(67), Pt/Ni_(81)Fe_(19) (permalloy), and Pt/Ni bilayers we find the largest spin polarization in Pt/Fe and a much smaller magnetic proximity effect in Pt/Ni. Additional XRMR experiments with varying photon energy are in good agreement with the theoretical predictions for the energy dependence of the magneto-optical parameters and allow identifying the optical dispersion δ and absorption β across the Pt L_3-absorption edge.
机译:我们提出X射线共振磁反射率(XRMR)作为检测Pt / FM异质结构中邻近感应界面自旋极化的非常灵敏的工具。进行了不同的XRMR实验,并评估了其结果对磁光深度分布,光子能量,光学参数和铁磁材料的依赖性。我们证明,对反射的X射线强度的详细分析可以洞悉非磁性金属的自旋极化的空间分布,该分布跨越到铁磁层的界面。通过基于从头算的光学数据进行的仿真对实验结果进行评估,可以提供与铁磁体相邻的自旋极化体中每个Pt原子的感应磁矩。对于由Pt / Fe,Pt / Ni_(33)Fe_(67),Pt / Ni_(81)Fe_(19)(坡莫合金)和Pt / Ni双层组成的具有不同铁磁材料的系列,我们发现最大的自旋极化为Pt / Fe和Pt / Ni中的磁邻近效应小得多。具有变化的光子能量的其他XRMR实验与磁光参数的能量依赖性的理论预测非常吻合,并且可以确定整个Pt L_3吸收边缘的光学色散δ和吸收β。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics 》 |2016年第21期| 214440.1-214440.9| 共9页
  • 作者单位

    Center for Spinelectronic Materials and Devices, Department of Physics, Bielefeld University, Universitaetsstrasse 25, 33615 Bielefeld, Germany;

    Center for Spinelectronic Materials and Devices, Department of Physics, Bielefeld University, Universitaetsstrasse 25, 33615 Bielefeld, Germany;

    Center for Spinelectronic Materials and Devices, Department of Physics, Bielefeld University, Universitaetsstrasse 25, 33615 Bielefeld, Germany;

    Deutsches Elektronen-Synchrotron DESY, Notkestrasse 85, 22607 Hamburg, Germany;

    Fachbereich Physik, Universitaet Osnabrueck, Barbarastrasse 7, 49069 Osnabrueck, Germany;

    Fachbereich Physik, Universitaet Osnabrueck, Barbarastrasse 7, 49069 Osnabrueck, Germany;

    Deutsches Elektronen-Synchrotron DESY, Notkestrasse 85, 22607 Hamburg, Germany;

    Center for Spinelectronic Materials and Devices, Department of Physics, Bielefeld University, Universitaetsstrasse 25, 33615 Bielefeld, Germany;

    Center for Spinelectronic Materials and Devices, Department of Physics, Bielefeld University, Universitaetsstrasse 25, 33615 Bielefeld, Germany;

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