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Improved performance of wide bandwidth neutron-spin polarizer due to ferromagnetic interlayer exchange coupling

机译:由于铁磁层间交换耦合而改善了宽带宽中子旋转偏振器的性能

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摘要

Ferromagnetic (FM) interlayer exchange coupling of ion-beam sputtered Fe/Ge multilayers was investigated by off-specular polarized neutron scattering measurements. We observed a monotonously growing correlation of magnetic moments in the out-of-plane direction with decreasing Ge thickness. The magnetic properties of the multilayers with and without the FM interlayer exchange coupling agree well with the three- and two-dimensional random anisotropy model, respectively, assuming an FM interlayer exchange coupling comparable to the direct exchange interaction within the sample plane. The results of the Fe/Ge multilayers were used to invoke FM interlayer exchange coupling in a neutron polarizing supermirror in order to extend its bandwidth. Typically, the bandwidth is limited due to a Curie temperature close to room temperature of the thinnest Fe layers with less than 3 nm. We propose a modified layer sequence of the neutron polarizing supermirror, where the minimum Fe thickness was set to 3.5 nm, whereas the Ge thickness was reduced. A performance test of the neutron polarizing supermirror showed that the FM interlayer exchange coupling contributed to the presence of the magnetization comparable to the bulk and resulted in a marked extension in the bandwidth.
机译:通过离子束溅射Fe / Ge多层进行离子束溅射Fe / GE多层的铁磁性(FM)层间交换耦合。我们观察到在平面外方向上的磁矩的单调越来越大,随着Ge厚度的降低而导致磁矩。假设与样品平面内的直接交换相互作用相当的FM层间交换耦合,多层具有和不具有FM层间交换耦合的多层与三维随机各向异性耦合的磁性。 Fe / GE多层的结果用于调用中子偏振超级镜中的FM层间交换耦合,以延长其带宽。通常,带宽由于居里温度接近较低的Fe层的室温,具有小于3nm的居里温度。我们提出了一种中子偏振过敏镜的改性层序列,其中最小Fe厚度设定为3.5nm,而Ge厚度降低。中子偏振超级模的性能测试表明,FM层间交换耦合有助于磁化的存在与体积相当,并导致带宽中的标记延伸。

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  • 来源
    《Journal of Applied Physics》 |2021年第8期|083904.1-083904.10|共10页
  • 作者单位

    J-PARC Center Japan Atomic Energy Agency 2-4 Shirakata Tokai Ibaraki 319-1195 Japan;

    J-PARC Center Japan Atomic Energy Agency 2-4 Shirakata Tokai Ibaraki 319-1195 Japan;

    J-PARC Center Japan Atomic Energy Agency 2-4 Shirakata Tokai Ibaraki 319-1195 Japan Institute of Materials Structure Science High Energy Accelerator Research Organization 203-1 Shirakata Tokai Ibaraki 319-1106 Japan;

    Neutron Science and Technology Center Comprehensive Research Organization for Science and Society 162-1 Shirakata Tokai Ibaraki 319-1106 Japan;

    Neutron Science and Technology Center Comprehensive Research Organization for Science and Society 162-1 Shirakata Tokai Ibaraki 319-1106 Japan;

    Neutron Science and Technology Center Comprehensive Research Organization for Science and Society 162-1 Shirakata Tokai Ibaraki 319-1106 Japan;

    J-PARC Center Japan Atomic Energy Agency 2-4 Shirakata Tokai Ibaraki 319-1195 Japan;

    Institut Laue Langevin 71 avenue des Martyrs 38042 Grenoble France;

    Institut Laue Langevin 71 avenue des Martyrs 38042 Grenoble France;

    Institut Laue Langevin 71 avenue des Martyrs 38042 Grenoble France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
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  • 正文语种 eng
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