论文标题

自旋轨道耦合抗铁磁铁中横向磁化的理论

Theory of transverse magnetization in spin-orbit coupled antiferromagnets

论文作者

Oh, Taekoo, Park, Sungjoon, Yang, Bohm-Jung

论文摘要

磁场下的某些抗铁磁体会产生垂直于该场的磁化以及与该场平行的更常规的磁化强度。到目前为止,横向磁化(TM)已归因于旋转倾斜效应或簇磁多极顺序的存在。但是,基于微观理解的TM的一般理论仍然缺失。在这里,我们通过考虑带有自旋轨道耦合产生的自旋各向异性的经典自旋汉密尔顿人,构建具有磁性多极顺序的TM的一般微观理论。首先,从一般对称分析中,我们表明,只有当所有晶体对称性都损坏时,TM才能出现,而不是反式镜子,反统一的两倍旋转和反转对称性。此外,通过分析自旋哈密顿量,我们表明,当旋转汉密尔顿的堕落基态歧管是离散的时,TM总是出现。另一方面,当退化基态歧管连续时,通常不会出现TM,除非磁场方向和自旋构型满足单离子各向异性下的特定几何条件。最后,我们表明TM可以诱导异常的平面霍尔效应,这是一种独特的传输现象,可用于探测多极抗铁磁结构。我们认为,我们的理论提供了一个有用的指南,可以理解具有复杂磁性结构的抗铁磁素的异常磁反应。

Some antiferromagnets under a magnetic field develop magnetization perpendicular to the field as well as more conventional ones parallel to the field. So far, the transverse magnetization (TM) has been attributed to either spin canting effect or the presence of cluster magnetic multipolar ordering. However, a general theory of TM based on microscopic understanding is still missing. Here, we construct a general microscopic theory of TM in antiferromagnets with cluster magnetic multipolar ordering by considering classical spin Hamiltonians with spin anisotropy that arises from the spin-orbit coupling. First, from general symmetry analysis, we show that TM can appear only when all crystalline symmetries are broken other than the antiunitary mirror, antiunitary two-fold rotation, and inversion symmetries. Moreover, by analyzing spin Hamiltonians, we show that TM always appears when the degenerate ground state manifold of the spin Hamiltonian is discrete. On the other hand, when the degenerate ground state manifold is continuous, TM generally does not appear except when the magnetic field direction and the spin configuration satisfy specific geometric conditions under single-ion anisotropy. Finally, we show that TM can induce anomalous planar Hall Effect, a unique transport phenomenon that can be used to probe multipolar antiferromagnetic structures. We believe that our theory provides a useful guideline for understanding the anomalous magnetic responses of the antiferromagnets with complex magnetic structures.

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