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Origin of the magnetic field enhancement of the spin signal in metallic nonlocal spin transport devices

机译:金属非局部旋转输送装置中旋转信号的磁场增强的原点

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摘要

The nonlocal spin valve (NLSV) enables unambiguous study of spin transport, owing to its ability to isolate pure spin currents. A key principle of NLSV operation is that the "spin signal" is invariant under application of in-plane magnetic fields (above the ferromagnetic contact saturation field). Yet, for certain ferromagnet/normal metal pairings in NLSVs, an unexpected field enhancement of the spin signal occurs, presenting a challenge that has, thus far, been difficult to resolve with existing models. By correlating the extracted spin transport parameters with material, temperature, and field dependencies, in this work we identify field quenching of magnetic impurity scattering as the origin of this effect, confirmed by excellent agreement between our results and field-dependent Kondo theory. In addition to addressing this long-standing mystery, our findings highlight a potential systematic underestimation of spin transport parameters. By identifying signature field and temperature dependencies, we provide here a relatively simple means to isolate and quantify this additional relaxation mechanism.
机译:由于其隔离纯纺丝电流的能力,非絮凝旋转阀(NLSV)能够进行旋转转运的明确研究。 NLSV操作的一个关键原理是,“自旋信号”在面内磁场(在铁磁性接触饱和度上方)的应用中是不变的。然而,对于NLSV中的某些铁磁/普通金属配对,发生了旋转信号的意外场增强,呈现到目前为止,难以解决现有模型的挑战。通过将提取的旋转传输参数与材料,温度和现场依赖性相关联,在这项工作中,我们将磁杂质散射的现场淬火作为这种效果的起源,通过我们的结果和现场依赖的Kondo理论之间的优秀协议确认。除了解决这一长期谜团之外,我们的研究结果还突出了旋转输送参数的潜在系统的低估。通过识别签名字段和温度依赖性,我们提供了一个相对简单的方法来隔离和量化这种额外的松弛机制。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2021年第1期|014423.1-014423.12|共12页
  • 作者单位

    Department of Physics University of Liverpool Liverpool L69 7ZE United Kingdom;

    School of Physics and Astronomy University of Minnesota Minneapolis Minnesota 55455 USA;

    Department of Physics University of Liverpool Liverpool L69 7ZE United Kingdom;

    School of Physics and Astronomy University of Minnesota Minneapolis Minnesota 55455 USA;

    Department of Chemical Engineering and Materials Science University of Minnesota Minneapolis Minnesota 55455 USA;

    Department of Physics University of Liverpool Liverpool L69 7ZE United Kingdom;

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