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Enhancement of spin Hall conductivity in W-Ta alloy

机译:W-TA合金中的旋转霍尔电导率的增强

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摘要

Generating pure spin currents via the spin Hall effect in heavy metals has been an active topic of research in the last decade. In order to reduce the energy required to efficiently switch neighboring ferromagnetic layers for applications, one should not only increase the charge-to-spin conversion efficiency but also decrease the longitudinal resistivity of the heavy metal. In this work, we investigate the spin Hall conductivity in W_(1-x)Ta_x/CoFeB/MgO (x = 0-0.2) using spin torque ferromagnetic resonance measurements. Alloying W with Ta leads to a factor of two change in both the damping-like effective spin Hall angle (from -0.15 to -0.3) and longitudinal resistivity (60.120 μΩ cm). At a 11% Ta concentration, a remarkably high spin Hall angle value of -0.3 is achieved with a low longitudinal resistivity of 100 μΩ cm, which could lead to a very low power consumption for this W-based alloy. This work demonstrates that sputter-deposited W-Ta alloys could be a promising material for power-efficient spin current generation.
机译:通过重金属的旋转霍尔效果产生纯纺丝,在过去十年中一直是研究的积极主题。为了减少有效切换应用的相邻铁磁层所需的能量,不仅应该提高电荷到旋转转换效率,而且还可以降低重金属的纵向电阻率。在这项工作中,我们使用自旋扭矩铁磁体谐振测量来研究W_(1-X)TA_X / COFEB / MGO(x = 0-0.2)中的旋转霍尔电导率。用TA的合金W导致阻尼有效的旋转霍尔角(从-0.15至-0.3)和纵向电阻率(60.120μΩcm)中的两个变化倍数。在11%TA浓度下,通过100μΩcm的低纵向电阻率实现了-0.3的显着高旋转霍尔角值,这可能导致该基合金的非常低的功耗。这项工作表明,溅射沉积的W-Ta合金可以是用于节能旋转电流产生的有希望的材料。

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  • 来源
    《Applied Physics Letters》 |2020年第14期|142403.1-142403.5|共5页
  • 作者单位

    Institute of Physics Johannes Gutenberg University Mainz 55128 Germany Max Planck Institute for Intelligent Systems Stuttgart 70569 Germany;

    Institute of Physics Johannes Gutenberg University Mainz 55128 Germany Korea Institute of Science and Technology Seoul 02792 South Korea;

    Institute of Physics Johannes Gutenberg University Mainz 55128 Germany Singulus Technologies AG 63796 Kahl am Main Germany;

    Institute of Physics Johannes Gutenberg University Mainz 55128 Germany Singulus Technologies AG 63796 Kahl am Main Germany;

    Institute of Physics Johannes Gutenberg University Mainz 55128 Germany;

    Institute of Physics Johannes Gutenberg University Mainz 55128 Germany;

    Institute of Physics Johannes Gutenberg University Mainz 55128 Germany;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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