论文标题
手性磁铁Co $ _9 $ Zn $ _9 $ _9 $ _2 $ _2 $ _2 $ _9 $ _2 $ _9
Topological melting of the metastable skyrmion lattice in the chiral magnet Co$_9$Zn$_9$Mn$_2$
论文作者
论文摘要
在$β$ -MN型手性磁铁公司$ _9 $ Zn $ _9 $ _9 $ MN $ _2 $中,我们证明了室温亚稳态的拓扑拓扑间隔晶格的磁场式崩溃,通过部分拓扑额的倾向逆转来描述。使用Lorentz透射电子显微镜,直接观察到磁场分布,因为磁场与原始的Skyrmion Core磁化强度(即负磁场)相抵触。由于天空的拓扑稳定性,对于越来越多的负面场,避免了亚稳态的天空晶格向平衡螺旋状态的直接过渡。取而代之的是,亚稳态的晶格逐渐变成巨大的磁性气泡,分别为$2π$域壁。最终,这些大型结构让位于形成几乎均匀的磁化培养基,该培养基意外地托管了具有倒核磁化的低密度孤立的天空密度,因此与初始状态相比,尺寸减小和相反的符号的总拓扑充电。先前在托管偶极相互作用稳定并称为“拓扑熔化”的系统的系统中观察到了类似的现象。在数值计算的支持下,我们认为观察到的部分拓扑电荷反演的状态起源于起始亚稳态的天空状态的拓扑保护。
In a $β$-Mn-type chiral magnet Co$_9$Zn$_9$Mn$_2$, we demonstrate that the magnetic field-driven collapse of a room temperature metastable topological skyrmion lattice passes through a regime described by a partial topological charge inversion. Using Lorentz transmission electron microscopy, the magnetization distribution was observed directly as the magnetic field was swept antiparallel to the original skyrmion core magnetization, i.e. negative magnetic fields. Due to the topological stability of skyrmions, a direct transition of the metastable skyrmion lattice to the equilibrium helical state is avoided for increasingly negative fields. Instead, the metastable skyrmion lattice gradually transforms into giant magnetic bubbles separated by $2π$ domain walls. Eventually these large structures give way to form a near-homogeneously magnetized medium that unexpectedly hosts a low density of isolated skyrmions with inverted core magnetization, and thus a total topological charge of reduced size and opposite sign compared with the initial state. A similar phenomenon has been observed previously in systems hosting ordered lattices of magnetic bubbles stabilized by the dipolar interaction and called "topological melting". With support from numerical calculations, we argue that the observed regime of partial topological charge inversion has its origin in the topological protection of the starting metastable skyrmion state.