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Temperature-dependent anisotropic magnetoresistance and spin-torque-driven vortex dynamics in a single microdisk

机译:单层微量磁盘中温度依赖性各向异性磁阻和旋转扭矩驱动的涡旋动力学

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摘要

Spin-orbit-torque-driven dynamics have recently gained interest in the field of magnetism due to the reduced requirement of current densities and an increase in efficiency, as well as the ease of implementation of different devices and materials. From a practical point of view, the low-frequency dynamics below 1 GHz is particularly interesting since dynamics associated with magnetic domains lie in this frequency range. While spin-torque excitation of high-frequency modes has been extensively studied, the intermediate low-frequency dynamics have received less attention, although spin torques could potentially be used for both manipulation of the spin texture and the excitation of dynamics. In this work, we demonstrate that it is possible to drive magnetic vortex dynamics in a single microdisk by spin-Hall torque at varying temperatures and relate the results to transport properties. We find that the gyrotropic mode of the core couples to the low-frequency microwave signal and produces a measurable voltage. The dynamic measurements are in agreement with magnetic transport measurements and are supported by micromagnetic simulations. Our results open the door for integrating magnetic vortex devices in spintronic applications.
机译:由于电流密度的要求和效率的提高,旋转轨道扭矩驱动的动态最近在磁场中获得了乐观的兴趣,以及效率的提高,以及不同设备和材料的易于实施。从实际的角度来看,低于1GHz的低频动态特别​​有趣,因为与磁畴相关的动态位于该频率范围内。虽然已经广泛研究了高频模式的旋转扭矩激发,但是中间低频动力学已经接受了不太关注,尽管旋转扭矩可能用于操纵旋转纹理和动态的激发。在这项工作中,我们证明可以通过在不同温度下通过旋转霍尔扭矩来驱动单个微仪中的磁涡流动态,并将结果与​​运输性能相关联。我们发现核心的旋转模式耦合到低频微波信号并产生可测量的电压。动态测量与磁传输测量一致,并由微磁性模拟支持。我们的结果打开了用于将磁性涡流器件集成在旋转式应用中的门。

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  • 来源
    《Journal of Applied Physics》 |2020年第24期|243904.1-243904.7|共7页
  • 作者单位

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA Department of Physics and Astronomy University of Delaware Newark Delaware 19716 USA;

    Physics Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Department of Physics and Astronomy University of Delaware Newark Delaware 19716 USA;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA;

    Materials Science Division Argonne National Laboratory Argonne Illinois 60439 USA;

  • 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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