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Double-tspiral magnetic structure of the Fe/Cr multilayer revealed by nuclear resonance reflectivity

机译:通过核共振反射率揭示的Fe / Cr多层膜的双螺旋磁性结构

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摘要

We have studied the magnetization depth profiles in a [~(57)Fe(d_(Fe))/Cr(d_(Cr))]_(30) multilayer with ultrathin Fe layers and nominal thickness of the chromium spacers d_(Cr)≈ 2.0 nm using nuclear resonance scattering of synchrotron radiation. The presence of a broad pure-magnetic half-order (1/2) Bragg reflection has been detected at zero external field. The joint fit of the reflectivity curves and Mossbauer spectra of reflectivity measured near the critical angle and at the "magnetic" peak reveals that the magnetic structure of the multilayer is formed by two spirals, one in the odd and another one in the even iron layers, with the opposite signs of rotation. The double-spiral structure starts from the surface with the almost-antiferromagnetic alignment of the adjacent Fe layers. The rotation of the two spirals leads to nearly ferromagnetic alignment of the two magnetic subsystems at some depth, where the sudden turn of the magnetic vectors by ~180° (spin flop) appears, and both spirals start to rotate in opposite directions. The observation of this unusual double-spiral magnetic structure suggests that the unique properties of giant magnetoresistance devices can be further tailored using ultrathin magnetic layers.
机译:我们研究了[〜(57)Fe(d_(Fe))/ Cr(d_(Cr))] _(30)多层且具有超薄Fe层和铬隔圈的标称厚度d_(Cr)的磁化深度分布≈2.0 nm,使用同步加速器辐射的核共振散射。在零外部磁场下检测到宽的纯磁半阶(1/2)布拉格反射的存在。在临界角附近和“磁性”峰处测得的反射率曲线和莫斯鲍尔反射率光谱的联合拟合表明,多层结构的磁性结构是由两个螺旋形成的,一个在奇数层,另一个在偶数铁层中,具有相反的旋转符号。双螺旋结构从表面开始,相邻的Fe层几乎呈反磁排列。两个螺线的旋转导致在一定深度处两个磁子系统的几乎铁磁对准,其中,磁矢量突然转过〜180°(自旋),并且两个螺线开始以相反的方向旋转。对这种不寻常的双螺旋磁结构的观察表明,可以使用超薄磁层进一步定制巨型磁阻器件的独特性能。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2018年第2期|024417.1-024417.6|共6页
  • 作者单位

    Faculty of Physics, M.V Lomonosov Moscow State University, 119991 Moscow, Russia;

    Faculty of Physics, M.V Lomonosov Moscow State University, 119991 Moscow, Russia;

    ESRF-The European Synchrotron, CS 40220, 38043 Grenoble Cedex 9, France,National Research Centre "Kurchatov Institute," PI. Kurchatova 1,123182 Moscow, Russia;

    ESRF-The European Synchrotron, CS 40220, 38043 Grenoble Cedex 9, France;

    National Research Centre "Kurchatov Institute," PI. Kurchatova 1,123182 Moscow, Russia;

    M.N. Mikheev Institute of Metal Physics UB RAS, 620990 Ekaterinburg, Russia;

    M.N. Mikheev Institute of Metal Physics UB RAS, 620990 Ekaterinburg, Russia;

    M.N. Mikheev Institute of Metal Physics UB RAS, 620990 Ekaterinburg, Russia;

    M.N. Mikheev Institute of Metal Physics UB RAS, 620990 Ekaterinburg, Russia;

    M.N. Mikheev Institute of Metal Physics UB RAS, 620990 Ekaterinburg, Russia;

    M.N. Mikheev Institute of Metal Physics UB RAS, 620990 Ekaterinburg, Russia,Institute of Natural Sciences, Ural Federal University, 620083 Ekaterinburg, Russia;

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