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Spatially periodic domain wall pinning potentials: Asymmetric pinning and dipolar biasing

机译:空间周期畴壁钉扎电位:不对称钉扎和偶极偏置

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摘要

Domain wall propagation has been measured in continuous, weakly disordered, quasi-two-dimensional, Ising-like magnetic layers that are subject to spatially periodic domain wall pinning potentials. The potentials are generated non-destructively using the stray magnetic field of ordered arrays of magnetically hard [Co/Pt]_m nanoplatelets, which are patterned above and are physically separated from the continuous magnetic layer. The effect of the periodic pinning potentials on thermally activated domain wall creep dynamics is shown to be equivalent, at first approximation, to that of a uniform, effective retardation field, H_(ret), which acts against the applied field, H. We show that H_(ret), depends not only on the array geometry but also on the relative orientation of H and the magnetization of the nanoplatelets. A result of the latter dependence is that wall-mediated hysteresis loops obtained for a set nanoplatelet magnetization exhibit many properties that are normally associated with ferromagnet/antiferromagnet exchange bias systems. These include a switchable bias, coercivity enhancement, and domain wall roughness that is dependent on the applied field polarity.
机译:在连续,弱无序,准二维,类似于Ising的磁性层中测量了畴壁的传播,这些磁层受到空间周期性畴壁钉扎电势的影响。电势是使用硬质[Co / Pt] _m纳米片的有序阵列的杂散磁场无损产生的,这些阵列在上方进行构图并与连续磁层物理隔离。初步显示,周期性钉扎电势对热活化畴壁蠕变动力学的影响与均匀,有效的延迟场H_(ret)等效,后者影响施加的场H。 H_(ret)不仅取决于阵列的几何形状,还取决于H的相对方向和纳米片的磁化强度。后一种依赖性的结果是,为一组纳米片磁化获得的壁介导的磁滞回线表现出通常与铁磁体/反磁体交换偏置系统相关的许多属性。这些包括可切换的偏置,矫顽力增强和畴壁粗糙度,这取决于所施加的场极性。

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  • 来源
    《Journal of Applied Physics》 |2013年第7期|073906.1-073906.10|共10页
  • 作者单位

    School of Physics, M013, University of Western Australia, 35 Stirling Hwy, Crawley, WA 6009, Australia,Laboratoire de Physique des Solides, Universite Paris-Sud 11, CNRS, UMR 8502, F-91405 Orsay Cedex, France,Unite Mixte de Physique CNRSIThales, 1 Avenue Augustin Fresnel, 91767 Palaiseau, France and Universite Paris-Sud 11, 9T405 Orsay, France;

    SPINTEC, UMR-8191, CEA-INAC/CNRS/UJF-Grenoble 1/Grenoble-INP, 17 rue des Martyrs, 38054 Grenoble Cedex 9, France;

    Laboratoire de Physique des Solides, Universite Paris-Sud 11, CNRS, UMR 8502, F-91405 Orsay Cedex, France;

    Laboratoire de Physique des Solides, Universite Paris-Sud 11, CNRS, UMR 8502, F-91405 Orsay Cedex, France;

    Laboratoire de Physique des Solides, Universite Paris-Sud 11, CNRS, UMR 8502, F-91405 Orsay Cedex, France;

    Laboratoire de Physique des Solides, Universite Paris-Sud 11, CNRS, UMR 8502, F-91405 Orsay Cedex, France;

    Laboratoire de Physique des Solides, Universite Paris-Sud 11, CNRS, UMR 8502, F-91405 Orsay Cedex, France;

    Laboratoire de Physique des Solides, Universite Paris-Sud 11, CNRS, UMR 8502, F-91405 Orsay Cedex, France;

    School of Physics, M013, University of Western Australia, 35 Stirling Hwy, Crawley, WA 6009, Australia,SUPA-School of Physics and Astronomy, University of Glasgow, G12 8QQ Glasgow, United Kingdom;

    SPINTEC, UMR-8191, CEA-INAC/CNRS/UJF-Grenoble 1/Grenoble-INP, 17 rue des Martyrs, 38054 Grenoble Cedex 9, France;

    SPINTEC, UMR-8191, CEA-INAC/CNRS/UJF-Grenoble 1/Grenoble-INP, 17 rue des Martyrs, 38054 Grenoble Cedex 9, France;

    SPINTEC, UMR-8191, CEA-INAC/CNRS/UJF-Grenoble 1/Grenoble-INP, 17 rue des Martyrs, 38054 Grenoble Cedex 9, France;

  • 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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