Instituto de Ciencia de Materiales de Madrid, CSIC, c/Sor Juana Inés de la Cruz, 3, 28049, Madrid, Spain.
Nanoscale. 2018 Mar 29;10(13):5923-5927. doi: 10.1039/c8nr00024g.
Diameter-modulated nanowires offer an important paradigm to design the magnetization response of 3D magnetic nanostructures by engineering the domain wall pinning. With the aim to understand its nature and to control the process, we analyze the magnetization response in FeCo periodically modulated polycrystalline nanowires varying the minor segment diameter. Our modelling indicates a very complex behavior with a strong dependence on the disorder distribution and an important role of topologically non-trivial magnetization structures. We demonstrate that modulated nanowires with a small diameter difference are characterized by an increased coercive field in comparison to the straight ones, which is explained by a formation of topologically protected walls formed by two 3D skyrmions with opposite chiralities. For a large diameter difference we report the occurrence of a novel pinning type called here the "corkscrew": the magnetization of the large diameter segment forms a skyrmion tube with a core position in a helical modulation along the nanowire. This structure is pinned at the constriction and in order to penetrate the narrow segments the vortex/skyrmion core size should be reduced.
直径调制纳米线通过调控畴壁钉扎为设计 3D 磁性纳米结构的磁化响应提供了一个重要范例。为了理解其本质并控制该过程,我们分析了在改变较小段直径的情况下,FeCo 周期性调制多晶纳米线的磁化响应。我们的模型表明,其具有非常复杂的行为,强烈依赖于无序分布,拓扑非平凡磁化结构也具有重要作用。我们证明,与直纳米线相比,直径差异较小的调制纳米线具有更高的矫顽场,这可以通过由两个具有相反手性的三维斯格明子形成的拓扑保护壁来解释。对于较大的直径差异,我们报告了一种新的钉扎类型,称为“螺旋塞”:大直径段的磁化形成了一个带有螺旋调制核心位置的斯格明子管,沿着纳米线排列。这种结构在缩颈处被钉扎,为了穿透狭窄的段,涡旋/斯格明子核心尺寸应该减小。