首页> 外文期刊>Physical review.B.Condensed matter and materials physics >Thermal Hall effect from a two-dimensional Schwinger boson gas with Rashba spin-orbit interaction: Application to ferromagnets with in-plane Dzyaloshinskii-Moriya interaction
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Thermal Hall effect from a two-dimensional Schwinger boson gas with Rashba spin-orbit interaction: Application to ferromagnets with in-plane Dzyaloshinskii-Moriya interaction

机译:热厅效应二维施怀玻色子与拉什巴旋转轨道相互作用:在飞机面内的铁圆形仪应用应用于飞机上的Dzyaloshinskii-Moriya互动

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摘要

Recently, uncovering the sources of the thermal Hall effect in insulators has become an important issue. In the case of ferromagnetic insulators, it is well known that the Dzyaloshinskii-Moriya (DM) interaction can induce a magnon thermal Hall effect. Specifically, the DM vector parallel to the magnetization direction induces complex magnon hopping amplitudes, so that magnons act as if they feel Lorentz force. However, the DM vector which is orthogonal to the magnetization direction has hitherto been neglected as a possible source of magnon thermal Hall effect. This is because they play no role in the linear spin wave theory, an often invoked approximation when computing the magnon thermal Hall effect. Here, we challenge this expectation by presenting a self-consistent Schwinger boson mean-field study of two-dimensional magnets with ferromagnetic Heisenberg interaction and in-plane DM interaction. We find that the relevant Schwinger boson mean-field Hamiltonian takes the form of a two-dimensional electron gas with Rashba spin-orbit interaction, which is known to show an anomalous Hall effect, spin Hall effect, and Rashba-Edelstein effect, whose thermal counterparts also appear in our system. Importantly, the thermal Hall effect can be induced when out-of-plane magnetic field is applied and persists even when the magnetic field is large, so that the spins are significantly polarized, and the linear spin wave theory is expected to be a reasonable approximation. Since the linear spin wave theory predicts a vanishing thermal Hall effect, our result implies that a linear spin wave is not a sufficient approximation and that magnon-magnon interaction must be taken into account to predict the correct thermal Hall conductivity.
机译:最近,揭示了绝缘体中热厅效果的来源已成为一个重要问题。在铁磁绝缘体的情况下,众所周知,Dzyaloshinskii-moriya(DM)相互作用可以诱导肿瘤热霍尔效应。具体地,与磁化方向平行的DM向量引起复杂的Magnon跳跃幅度,使得隆起作为它们感到洛伦兹力。然而,与磁化方向正交的DM矢量已经被忽略被忽略了作为Magnon热霍尔效应的可能源。这是因为它们在线性旋转波理论中没有发挥作用,在计算Magnon热霍尔效应时经常调用近似。在这里,我们通过提出具有铁磁Heisenberg相互作用和面内DM相互作用的二维磁体的自我一致的Schwinger玻色子叶片研究来挑战这一期望。我们发现相关的Schwinger Boson Mean-Field Hamiltonian采用Rashba旋转轨道相互作用的二维电子气体的形式,已知是显示异常霍尔效应,旋转霍尔效应和拉什巴施斯坦效应,其热量同行也出现在我们的系统中。重要的是,当施加外平面磁场并且即使当磁场大而持续存在时,可以引起热霍尔效果,使得旋转被显着偏振,并且预期线性自旋波理论是合理的近似。由于线性旋转波理论预测消失的热霍尔效应,因此我们的结果意味着线性旋转波不是足够的近似,并且必须考虑到Magnon-Magnon相互作用以预测正确的热霍尔电导率。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2020年第21期|214421.1-214421.8|共8页
  • 作者

    Sungjoon Park; Bohm-Jung Yang;

  • 作者单位

    Center for Correlated Electron Systems Institute for Basic Science Seoul 08826 Korea Department of Physics and Astronomy Seoul National University Seoul 08826 Korea and Center for Theoretical Physics Seoul National University Seoul 08826 Korea;

    Center for Correlated Electron Systems Institute for Basic Science Seoul 08826 Korea Department of Physics and Astronomy Seoul National University Seoul 08826 Korea and Center for Theoretical Physics Seoul National University Seoul 08826 Korea;

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