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Spin-dependent scattering and magnetic proximity effect in Ni-doped Co/Cu multilayers as a probe of atomic magnetism

机译:Ni掺杂的Co / Cu多层膜中自旋相关的散射和磁邻近效应作为原子磁性的探针

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摘要

We investigate the spin transport and ferromagnetic resonance properties of giant magnetoresistance (GMR) Co/Cu-Ni multi-layers with variable levels of Ni doping in the Cu spacer. We present an experimental evidence for a magnetic-to-diamagnetic transition in the atomic magnetic moment of Ni in the Cu matrix for concentrations below 15 at. % Ni. As its concentration is increased, Ni atoms turn into spin scattering centers, which is manifested experimentally as a step-like change in the GMR of the multilayers. This behavior is observed in multilayers with gradient-doped Cu spacers, where only the inner region was doped with Ni. In the uniformly doped spacers, the GMR decreases monotonously with increasing Ni content, indicating that Ni atoms are magnetic and act as spin relaxation centers in the entire dopant-concentration range studied. We explain the difference in the observed GMR behavior due to a strong magnetic proximity effect in the uniform spacers, which is efficiently suppressed in the gradient spacers. The observed magnetic phase transition is fully supported by our detailed ab initio calculations, taking into consideration structural relaxation in the system as well as potential Ni clustering. Controlling the loss or gain of the atomic magnetism for a specific dopant can be a tool in probing and controlling spin relaxation in materials and devices for spin-valve and spin-torque based applications. Published under license by AIP Publishing.
机译:我们研究了在铜隔层中具有可变水平的镍掺杂的巨型磁阻(GMR)Co / Cu-Ni多层的自旋输运和铁磁共振特性。我们提供了一个实验证据,表明当浓度低于15 at时,Cu基体中Ni的原子磁矩发生磁-反磁转变。 % 你。随着其浓度增加,Ni原子变成自旋散射中心,这在实验中表现为多层GMR中的阶梯状变化。在具有梯度掺杂的铜间隔物的多层中观察到这种行为,其中仅内部区域掺杂有镍。在均匀掺杂的隔离层中,GMR随着Ni含量的增加而单调降低,表明Ni原子是磁性的,并且在整个研究的掺杂剂浓度范围内充当自旋弛豫中心。我们解释了由于均匀的垫片中的强磁性接近效应而导致的观测到的GMR行为的差异,这种差异在梯度垫片中得到了有效抑制。考虑到系统中的结构弛豫以及潜在的Ni团簇,我们详细的从头算计算完全支持了观测到的磁相变。控制特定掺杂剂的原子磁性的损失或增益可以是探测和控制基于自旋阀和自旋扭矩的应用的材料和装置中自旋弛豫的工具。由AIP Publishing授权发布。

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  • 来源
    《Journal of Applied Physics》 |2019年第2期|023907.1-023907.6|共6页
  • 作者单位

    Royal Inst Technol, Nanostruct Phys, Stockholm, Sweden|NASU, Inst Magnetism, Kiev, Ukraine|MESU, Kiev, Ukraine;

    Royal Inst Technol, Nanostruct Phys, Stockholm, Sweden|NASU, Inst Magnetism, Kiev, Ukraine|MESU, Kiev, Ukraine;

    NASU, Inst Magnetism, Kiev, Ukraine|MESU, Kiev, Ukraine;

    NASU, Inst Magnetism, Kiev, Ukraine|MESU, Kiev, Ukraine;

    Royal Inst Technol, Nanostruct Phys, Stockholm, Sweden|NASU, Inst Magnetism, Kiev, Ukraine|MESU, Kiev, Ukraine;

    NASU, Inst Magnetism, Kiev, Ukraine|MESU, Kiev, Ukraine;

    NASU, Inst Met Phys, Kiev, Ukraine;

    Royal Inst Technol, Nanostruct Phys, Stockholm, Sweden;

  • 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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