论文标题

混合拓扑环状态圆周效应和轨道磁性在韦尔半法的天空中

Mixed topology ring states for Hall effect and orbital magnetism in skyrmions of Weyl semimetals

论文作者

Redies, M., Lux, F. R., Hanke, J. -P., Buhl, P. M., Blügel, S., Mokrousov, Y.

论文摘要

Skyrmion Lattices作为一种新型的手性自旋状态正在引起越来越多的注意力,因为它们的特性是由真实空间拓扑特性引起的。同时,具有复杂$ k $ - 空间拓扑的磁性Weyl半法的性能正在进入Spimtronics研究的重点。我们通过采用2D混合Weyl半含量的最小模型,考虑到拓扑半学上的Skyrmion Lattices的Hall传输性能和轨道磁性,该模型的最小模型是磁化方向的函数,表现出两个Chern绝缘体相,由Weyl syal sy a weyl superation sy a in-Weyl superation sy sy a in n ofer-nate a in chern simimetals。我们发现,虽然轨道磁化在拓扑上是可靠的,并且大厅的传输属性对旋转分布的细节非常敏感,这是根据最近发现的手性霍尔效应的预期行为[1],但它们在Chern绝缘体间隙的行为在很大程度上取决于所谓的混合拓扑环境的特性确定的是与伪造的背景相关的flmers skyrm skyrm skyrm skyrm skyrm skyrm skyrm skyrm skyrm skyrm skyrm的特性。特别是,我们表明这些局部环状态具有给定的轨道性手性,该手性与天空半径相反,从而介导了天空晶格的轨道磁化强度的平滑开关动力学。我们推测,尽管新兴的环状态可能在Maporana状态的物理学中发挥作用,但在实验上探测其性质可以提供有关Skyrmionic自旋结构细节的见解。

Skyrmion lattices as a novel type of chiral spin states are attracting increasing attention, owing to their peculiar properties stemming from real-space topological properties. At the same time, the properties of magnetic Weyl semimetals with complex $k$-space topology are moving into the focus of research in spintronics. We consider the Hall transport properties and orbital magnetism of skyrmion lattices imprinted in topological semimetals, by employing a minimal model of a 2D mixed Weyl semimetal which, as a function of the magnetization direction, exhibits two Chern insulator phases separated by a Weyl state for an an in-plane magnetization direction. We find that while the orbital magnetization is topologically robust and Hall transport properties are very sensitive to the details of the spin distribution in accordance to the behavior expected from the recently discovered chiral Hall effect[1], their behavior in the region of the Chern insulator gap is largely determined by the properties of the so-called mixed topology ring states, emerging in domain walls that separate the skyrmion core from the ferromagnetic background. In particular, we show that these localized ring states possess a given orbital chirality which reverses sign as a function of the skyrmion radius, thereby mediating a smooth switching dynamics of the orbital magnetization of the skyrmion lattice. We speculate that while the emergent ring states can possibly play a role in the physics of Majorana states, probing their properties experimentally can provide insights into the details of skyrmionic spin structures.

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