论文标题
相关电子系统中线性缺陷结构的磁各向异性
Magnetic anisotropy from linear defect structures in correlated electron systems
论文作者
论文摘要
相关的电子系统,尤其是基于铁的超导体,对应变极为敏感,这在晶体生长过程中不可避免地发生。已经提出了这种类型的内置应变,以作为实验的可能解释,在这些实验中,在与基于铁的超导体的名义上四方相的高温下观察到了列表。假定应变会产生线性缺陷结构,例如脱位,与倒置不足的超导体YBCO中的O空缺链非常相似。在这里,我们研究了在存在电子相关性的情况下的简单微观脱位模型,如果存在自旋轨道相互作用,该缺陷状态可以驱动这种磁各向异性。我们估计了这些位错对磁各向异性的贡献,如库酸酯和基于FE的系统中当前的扭矩磁力测定实验所检测到的。
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 of iron-based superconductors. Strain is assumed to produce linear defect structures, e.g. dislocations, which are quite similar to O vacancy chainlets in the underdoped cuprate superconductor YBCO. Here we investigate a simple microscopic model of dislocations in the presence of electronic correlations, which create defect states that can drive magnetic anisotropy of this kind, if spin orbit interaction is present. We estimate the contribution of these dislocations to magnetic anisotropy as detected by current torque magnetometry experiments in both cuprates and Fe-based systems.