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Superconductivity-induced change in magnetic anisotropy in epitaxial ferromagnet-superconductor hybrids with spin-orbit interaction

机译:随着旋转轨道相互作用的外延铁磁体 - 超导体杂种中的超导诱导的磁各向异性变化

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摘要

The interaction between superconductivity and ferromagnetism in thin film superconductor/ferromagnet heterostructures is usually reflected by a change in superconductivity of the S layer set by the magnetic state of the F layers. Here we report the converse effect: transformation of the magnetocrystalline anisotropy of a single Fe(001) layer, and thus its preferred magnetization orientation, driven by the superconductivity of an underlying V layer through a spin-orbit coupled MgO interface. We attribute this to an additional contribution to the free energy of the ferromagnet arising from the controlled generation of triplet Cooper pairs, which depends on the relative angle between the exchange field of the ferromagnet and the spin-orbit field. This is fundamentally different from the commonly observed magnetic domain modification by Meissner screening or domain wall-vortex interaction, and it offers the ability to fundamentally tune magnetic anisotropies using superconductivity-a key step in designing future cryogenic magnetic memories.
机译:在薄膜超导体/铁磁性异质结构中的超导性和铁磁性之间的相互作用通常通过由F层的磁状态设置的S层的超导电性的变化来反射。在这里,我们报告了逆转效果:通过通过旋转轨道耦合MgO接口改变由底层V层的超导导出的单个Fe(001)层的磁化器各向异性的转换,从而通过旋转轨道耦合的MgO接口驱动。我们将这一点归因于来自受控的三元组Cooper对产生的铁磁体的自由能的额外贡献,这取决于铁圆形和旋转轨道场的交换场之间的相对角度。这与Meissner筛选或域壁 - 涡流相互作用的常见磁域改性基本不同,并且它提供了利用超导致磁各向异性的能力 - 使用超导 - 设计未来低温磁存储器的关键步骤。

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  • 来源
    《Physical review》 |2020年第2期|020405.1-020405.7|共7页
  • 作者单位

    Departamento Fisica de la Materia Condensada C-III Instituto Nicolas Cabrera (INC) and Condensed Matter Physics Institute (IFIMAC) Universidad Autonoma de Madrid Madrid 28049 Spain;

    Center for Quantum Spintronics Department of Physics Norwegian University of Science and Technology NO-7491 Trondheim Norway;

    Departamento Fisica de la Materia Condensada C-III Instituto Nicolas Cabrera (INC) and Condensed Matter Physics Institute (IFIMAC) Universidad Autonoma de Madrid Madrid 28049 Spain;

    Department of Physics and Chemistry Center of Superconductivity Spintronics and Surface Science C4S Technical University of Cluj-Napoca Cluj-Napoca 400114 Romania Institut Jean Lamour Nancy Universite 54506 Vandoeuvre-les-Nancy Cedex France;

    Institut Jean Lamour Nancy Universite 54506 Vandoeuvre-les-Nancy Cedex France;

    Department of Physics Loughborough University Epinal Way Loughborough LE11 3TU United Kingdom;

    Center for Quantum Spintronics Department of Physics Norwegian University of Science and Technology NO-7491 Trondheim Norway;

    Departamento Fisica de la Materia Condensada C-III Instituto Nicolas Cabrera (INC) and Condensed Matter Physics Institute (IFIMAC) Universidad Autonoma de Madrid Madrid 28049 Spain;

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