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首页> 外文期刊>Physical review. B, Condensed Matter And Materals Physics >Antiferromagnetic skyrmion crystals: Generation, topological Hall, and topological spin Hall effect
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Antiferromagnetic skyrmion crystals: Generation, topological Hall, and topological spin Hall effect

机译:反铁磁Skyrmion晶体:生成,拓扑霍尔和拓扑自旋霍尔效应

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摘要

Skyrmions are topologically nontrivial, magnetic quasiparticles that are characterized by a topological charge. A regular array of skyrmions, a skyrmion crystal (SkX), features the topological Hall effect (THE) of electrons, which, in turn, gives rise to the Hall effect of the skyrmions themselves. It is commonly believed that antiferromagnetic skyrmion crystals (AFM-SkXs) lack both effects. In this Rapid Communication, we present a generally applicable method to create stable AFM-SkXs by growing a two-sublattice SkX onto a collinear antiferromagnet. As an example we show that both types of skyrmion crystals, conventional and antiferromagnetic, exist in honeycomb lattices. While AFM-SkXs with equivalent lattice sites do not show a THE, they exhibit a topological spin Hall effect. On top of this, AFM-SkXs on inequivalent sublattices exhibit a nonzero THE, which may be utilized in spintronics devices. Our theoretical findings call for experimental realization.
机译:Skyrmion是拓扑上无关紧要的磁性准粒子,其特征在于拓扑电荷。规则排列的天体离子,即天体离子晶体(SkX),具有电子的拓扑霍尔效应(THE),这反过来会引起天体离子本身的霍尔效应。通常认为反铁磁性天生离子晶体(AFM-SkXs)缺乏这两种作用。在本快速通信中,我们提出了一种普遍适用的方法,即通过将两个子格的SkX生长到共线反铁磁体上来创建稳定的AFM-SkX。作为一个例子,我们显示了蜂窝晶格中存在两种类型的传统和反铁磁性的天体离子晶体。虽然具有相等晶格位点的AFM-SkXs并未显示THE,但它们表现出拓扑自旋霍尔效应。最重要的是,不等价子晶格上的AFM-SkX呈现出非零的THE,可在自旋电子设备中使用。我们的理论发现要求实验实现。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics 》 |2017年第6期| 060406.1-060406.5| 共5页
  • 作者单位

    Max-Planck-Institut fuer Mikrostrukturphysik, D-06120 Halle (Saale), Germany;

    Max-Planck-Institut fuer Mikrostrukturphysik, D-06120 Halle (Saale), Germany;

    Institut fuer Physik, Martin-Luther-Universitaet Halle-Wittenberg, D-06099 Halle (Saale), Germany;

    Max-Planck-Institut fuer Mikrostrukturphysik, D-06120 Halle (Saale), Germany,Institut fuer Physik, Martin-Luther-Universitaet Halle-Wittenberg, D-06099 Halle (Saale), Germany;

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