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磁斯格明子的自发产生与湮灭动力学及应变限制稳定性

Spontaneous creation and annihilation dynamics and strain-limited stability of magnetic skyrmions.

作者信息

Rendell-Bhatti Frederic, Lamb Raymond J, van der Jagt Johannes W, Paterson Gary W, Swagten Henk J M, McGrouther Damien

机构信息

SUPA, School of Physics and Astronomy, University of Glasgow, Glasgow, G12 8QQ, UK.

Department of Applied Physics, Eindhoven University of Technology, 5612 AZ, Eindhoven, The Netherlands.

出版信息

Nat Commun. 2020 Jul 15;11(1):3536. doi: 10.1038/s41467-020-17338-7.

Abstract

Magnetic skyrmions are topological magnetic spin structures exhibiting particle-like behaviour. They are of strong interest from a fundamental viewpoint and for application, where they have potential to act as information carriers in future low-power computing technologies. Importantly, skyrmions have high physical stability because of topological protection. However, they have potential to deform according to their local energy environment. Here we demonstrate that, in regions of high exchange energy density, skyrmions may exhibit such extreme deformation that spontaneous merging with nearest neighbours or spawning new skyrmions is favoured to attain a lower energy state. Using transmission electron microscopy and a high-speed imaging detector, we observe dynamics involving distinct configurational states, in which transitions are accompanied by spontaneous creation or annihilation of skyrmions. These observations raise important questions regarding the limits of skyrmion stability and topological charge conservation, while also suggesting a means of control of skyrmion creation and annihilation.

摘要

磁斯格明子是呈现类粒子行为的拓扑磁自旋结构。从基础研究角度以及应用角度来看,它们都备受关注,因为在未来低功耗计算技术中,它们有潜力充当信息载体。重要的是,由于拓扑保护,斯格明子具有很高的物理稳定性。然而,它们有可能根据其局部能量环境发生形变。在此,我们证明,在高交换能量密度区域,斯格明子可能会出现极端形变,以至于与最近邻自发合并或产生新的斯格明子以达到更低能量状态的情况更为有利。利用透射电子显微镜和高速成像探测器,我们观察到了涉及不同构型状态的动力学过程,其中转变伴随着斯格明子的自发产生或湮灭。这些观察结果引发了关于斯格明子稳定性极限和拓扑电荷守恒的重要问题,同时也提出了一种控制斯格明子产生和湮灭的方法。

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