论文标题

在Zn取代的Skyrmion主机Cu $ _2 $ oseo $ _3 $中固定helimagnetic相变的固定

Pinning of Helimagnetic Phase Transitions in Zn-Substituted Skyrmion Host Cu$_2$OSeO$_3$

论文作者

Birch, M. T., Moody, S. H., Wilson, M. N., Crisanti, M., Bewley, O., Štefančič, A., Balakrishnan, G., Fan, R., Steadman, P., Venero, D. Alba, Cubitt, R., Hatton, P. D.

论文摘要

磁性天空是纳米大小的拓扑自旋纹理,通过磁能项的微妙平衡稳定。 Skyrmion-Hosting材料的基础晶体结构的化学取代提供了操纵这些能量贡献的途径,但也引入了其他效果,例如混乱和固定。虽然在B20金属材料(例如Fe $ _ {1-x} $ CO $ _x $ si和mn $ _ {1-x} $ _x $ _x $ si的后果,兴奋剂和混乱的效果已经在B20金属材料中进行了很好的研究。在这项工作中,我们利用AC磁力测定法和小角度中子散射的组合来研究原始和Zn取代的Cu $ _2 $ oseo $ _3 $中的磁相变态动力学。结果表明,一阶螺旋形相变表现出了两个热分离的行为状态:在高温下,螺旋磁体结构域通过大规模的,连续的旋转而变化,而在低温下,两个相的两个相位均存在。值得注意的是,尽管可用的热活化能量减少了,但与高温相比,在低温下,在替代样品中固定的影响较少。我们将这种行为归因于cu $ _2 $ oseo $ _3 $独有的大型,依赖温度,立方各向异性,该行为变得足够强大,可以克服低温下的固定能量。当工程Skyrmion材料针对未来的应用时,考虑和进一步探索这些效果至关重要。

Magnetic skyrmions are nano-sized topological spin textures stabilized by a delicate balance of magnetic energy terms. The chemical substitution of the underlying crystal structure of skyrmion-hosting materials offers a route to manipulate these energy contributions, but also introduces additional effects such as disorder and pinning. While the effects of doping and disorder have been well studied in B20 metallic materials such as Fe$_{1-x}$Co$_x$Si and Mn$_{1-x}$Fe$_x$Si, the consequences of chemical substitution in the magnetoelectric insulator Cu$_2$OSeO$_3$ have not been fully explored. In this work, we utilize a combination of AC magnetometry and small angle neutron scattering to investigate the magnetic phase transition dynamics in pristine and Zn-substituted Cu$_2$OSeO$_3$. The results demonstrate that the first order helical-conical phase transition exhibits two thermally separated behavioural regimes: at high temperatures, the helimagnetic domains transform by large-scale, continuous rotations, while at low temperatures, the two phases coexist. Remarkably, the effects of pinning in the substituted sample are less prevalent at low temperatures, compared to high temperatures, despite the reduction of available thermal activation energy. We attribute this behaviour to the large, temperature-dependent, cubic anisotropy unique to Cu$_2$OSeO$_3$, which becomes strong enough to overcome the pinning energy at low temperatures. Consideration and further exploration of these effects will be crucial when engineering skyrmion materials towards future applications.

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