Magnetic anisotropy from linear defect structures in correlated electron systems

Mainak Pal, Laetitia Bettmann, A. Kreisel, P. Hirschfeld
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引用次数: 1

Abstract

Correlated electron systems, particularly iron-based superconductors, are extremely sensitive to strain, which inevitably occurs in the crystal growth process. Built-in strain of this type has been proposed as a possible explanation for experiments where nematic order has been observed at high temperatures corresponding to the nominally tetragonal phase. Here we investigate a simple microscopic model of a strain-induced dislocation in the presence of electronic correlations, which create defect states that can drive magnetic anisotropy of this kind, if spin orbit interaction is present. Such defects can arise, e.g., in Fe-based systems or in Cu-O chains in cuprates. We estimate the contribution of these dislocations to magnetic anisotropy as detected by current torque magnetometry experiments.
相关电子系统中线性缺陷结构的磁各向异性
相关电子系统,特别是铁基超导体,对应变非常敏感,这在晶体生长过程中不可避免地会发生。这种类型的内建应变已被提出作为一种可能的解释,在高温下观察到与名义上的四方相对应的向列有序。在这里,我们研究了一个简单的微观模型,在存在电子相关的情况下,电子相关产生的缺陷态可以驱动这种磁各向异性,如果存在自旋轨道相互作用。例如,在铁基系统或铜酸盐中的Cu-O链中可能出现这种缺陷。我们估计这些位错对磁各向异性的贡献,通过电流转矩磁强计实验检测到。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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