论文标题
基于结核病的准晶体和大约
Topological magnetic textures and long-range orders in Tb-based quasicrystal and approximant
论文作者
论文摘要
准晶体(QC)具有独特的晶格结构,而周期性晶体中禁止使用旋转对称性。电特性远非完全理解。是否在QC中实现了磁性长期订单,尚未解决。在这里,我们报告了基于结核病的QC中铁磁长期顺序的理论发现。过去关于QC的理论研究的困难是缺乏晶体电场(CEF)的微观理论,这在稀土系统中至关重要。通过分析基于结核病的QC中的CEF,我们澄清磁各向异性在实现基于结核病的QC和大约晶体(AC)中独特的磁纹理方面起着关键作用。通过构建最小模型,我们表明在其顶点TB原子所在的二十面体上的各种磁纹理。我们发现,刺猬状态的特征是一个拓扑电荷,而旋转的态度的特征是三个的拓扑表现异常大。刺猬和旋转矩态被证明是在1/1 AC中被转录为新兴的单子和抗巨核的抗磁磁序。我们发现,这些状态在施加的磁场下表现出拓扑厅效应,并伴随拓扑和元磁过渡。我们的模型和确定的相图有望与具有强磁各向异性的稀有QC和ACS的广泛范围相关,这不仅有用,不仅可以理解磁力,而且还可以探索新颖的拓扑特性。
The quasicrystal(QC)s have unique lattice structure with the rotational symmetry forbidden in the periodic crystals. The electric properties are far from complete understanding. It has been unresolved whether the magnetic long-range orders are realized in the QC. Here we report our theoretical discovery of the ferromagnetic long-range order in the Tb-based QC. The difficulty in past theoretical studies on the QC was lack of the microscopic theory of the crystalline electric field (CEF), which is crucially important in the rare-earth systems. By analyzing the CEF in the Tb-based QC, we clarify that magnetic anisotropy plays a key role in realizing unique magnetic textures in the Tb-based QC and approximant crystal (AC). By constructing the minimal model, we show that various magnetic textures on the icosahedron at whose vertices Tb atoms are located. We find that the hedgehog state is characterized by the topological charge of one and the whirling-moment state is characterized by unusually large topological charge of three. The hedgehog and whirling-moment states are shown to be realized as antiferromagnetic orders transcribed as the emergent monopole and antimonopole in the 1/1 AC. We find that these states exhibit the topological Hall effect under applied magnetic field accompanied by the topological as well as metamagnetic transition. Our model and the determined phase diagram are expected to be relevant to the broad range of the rare-earth based QCs and ACs with strong magnetic anisotropy, which are useful not only to understand magnetism but also to explore novel topological properties.