论文标题
原子量表的天空和呼吸 - 晶格中的大型拓扑厅效应
Atomic scale skyrmions and large topological Hall effect in a breathing-kagome lattice
论文作者
论文摘要
由GD $ _3 $ ru $ _4 $ al $ _ {12} $进行的最新实验的动机,我们证明了原子量表天空阵线的出现,在呼吸的kagome lattice上互动的旋转中,与竞争最近的邻居Ferromagnetic和下一个最接近的邻居邻居抗fiferromagnetic交流相互作用。在存在纵向磁场的情况下,基态磁阶从低场处的螺旋相演变为中间场的天空阶段,然后最终进入高场处的偏振相。每个天空的大小仅跨越晶格的两个晶胞,而在大多数手性磁体中,数十个至数百个单位细胞。此外,天空不是由手性互动所驱动的,而是由竞争交换互动与几何挫败感之间的相互作用所驱动的,就像在gd $ _3 $ _3 $ ru $ _4 $ _4 $ al $ al $ _ {12} $中一样。当巡回电子与局部矩耦合时,它们表现出由Skyrmion纹理的真实空间浆果曲率产生的通常由Skyrmion驱动的拓扑厅效应(The)。该系统中的天空尺寸较小,产生了强烈的局部浆果曲率,从而增强了曲率,该曲率通过巡回电子的旋转与局部矩之间的强耦合近似进行了研究。我们的结果对于理解GD $ _3 $ ru $ _4 $ al $ _ {12} $的实验以及同一金属沮丧磁铁家族的其他成员至关重要。
Motivated by recent experiments in Gd$_3$Ru$_4$Al$_{12}$, we demonstrate the emergence of atomic scale Skyrmions in interacting spins on a breathing kagome lattice with competing nearest neighbor ferromagnetic and next nearest neighbor antiferromagnetic exchange interactions. In the presence of an applied longitudinal magnetic field, the ground state magnetic order evolves from a helical phase at low fields to a Skyrmion phase at intermediate fields before finally entering a polarized phase at high fields. The size of each Skyrmion spans only two unit cells of the lattice, in contrast to tens to hundreds of unit cells in most chiral magnets. Furthermore, the Skyrmions are driven not by chiral interactions but by the interplay between competing exchange interactions and geometric frustration, just as in Gd$_3$Ru$_4$Al$_{12}$ . When itinerant electrons are coupled to the localized moments, they exhibit the usual Skyrmion-driven topological Hall effect (THE) arising from the real space Berry curvature of the the Skyrmion texture. The small size of the Skyrmions in this system yield a strong local Berry curvature that results in an enhanced THE, which is investigated using a strong coupling approximation between the spins of the itinerant electrons and the localized moments. Our results will be crucial in understanding the experiments in Gd$_3$Ru$_4$Al$_{12}$ and other members of the same family of metallic frustrated magnets.