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Manipulating antiferromagnets with magnetic fields: Ratchet motion of multiple domain walls induced by asymmetric field pulses

机译:用磁场操纵反铁磁体:非对称磁场脉冲引起的多个畴壁的棘轮运动

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摘要

Future applications of antiferromagnets (AFs) in many spintronics devices rely on the precise manipulation of domain walls. The conventional approach using static magnetic fields is inefficient due to the low susceptibility of AFs. Recently proposed electrical manipulation with spin-orbit torques is restricted to metals with a specific crystal structure. Here, we propose an alternative, broadly applicable approach: using asymmetric magnetic field pulses to induce controlled ratchet motion of AF domain walls. The efficiency of this approach is based on three peculiarities of AF dynamics. First, a time-dependent magnetic field couples with an AF order parameter stronger than a static magnetic field, which leads to higher mobility of the domain walls. Second, the rate of change of the magnetic field couples with the spatial variation of the AF order parameter inside the domain, and this enables a synchronous motion of multiple domain walls with the same structure. Third, tailored asymmetric field pulses in combination with static friction can prevent backward motion of domain walls and thus lead to the desired controlled ratchet effect. The proposed use of an external field, rather than internal spin-orbit torques, avoids any restrictions on size, conductivity, and crystal structure of the AF material. We believe that our approach paves a way for the development of AF-based devices based on the controlled motion of AF domain walls.
机译:在许多自旋电子学设备中反铁磁体(AF)的未来应用依赖于畴壁的精确操纵。由于AF的敏感性低,使用静磁场的常规方法效率低下。最近提出的具有自旋轨道转矩的电操纵仅限于具有特定晶体结构的金属。在这里,我们提出了另一种广泛应用的方法:使用非对称磁场脉冲来诱导AF域壁的棘轮运动。这种方法的效率基于自动对焦动力学的三个特点。首先,时间相关的磁场具有比静态磁场更强的AF阶次参数,从而导致畴壁的迁移率更高。其次,磁场的变化率与磁畴内部的AF阶数参数的空间变化耦合,这使得具有相同结构的多个磁畴壁能够同步运动。第三,量身定制的不对称场脉冲与静摩擦相结合可以防止畴壁向后运动,从而导致所需的受控棘轮效应。建议使用外部磁场而不是内部自旋轨道转矩,可以避免对AF材料的尺寸,导电率和晶体结构的任何限制。我们相信,我们的方法为基于AF域壁受控运动的基于AF的设备的开发铺平了道路。

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  • 来源
    《Applied Physics Letters》 |2016年第14期|142404.1-142404.4|共4页
  • 作者

    O. Gomonay; M. Klaeui; J. Sinova;

  • 作者单位

    Institut fuer Physik, Johannes Gutenberg Universitaet Mainz, D-55099 Mainz, Germany,National Technical University of Ukraine 'KPI,' 03056 Kyiv, Ukraine;

    Institut fuer Physik, Johannes Gutenberg Universitaet Mainz, D-55099 Mainz, Germany;

    Institut fuer Physik, Johannes Gutenberg Universitaet Mainz, D-55099 Mainz, Germany,Institute of Physics, Academy of Sciences of the Czech Republic, Cukrovarnicka 10, 162 00 Praha 6, Czech Republic;

  • 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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