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中心对称磁体中斯格明子的受激成核

Stimulated Nucleation of Skyrmions in a Centrosymmetric Magnet.

作者信息

Wang Binbin, Wu Po-Kuan, Bagués Salguero Núria, Zheng Qiang, Yan Jiaqiang, Randeria Mohit, McComb David W

机构信息

Department of Materials Science and Engineering, The Ohio State University, Columbus, Ohio 43212, United States.

Center for Electron Microscopy and Analysis, The Ohio State University, Columbus, Ohio 43212, United States.

出版信息

ACS Nano. 2021 Aug 24;15(8):13495-13503. doi: 10.1021/acsnano.1c04053. Epub 2021 Aug 10.

Abstract

Understanding the dynamics of skyrmion nucleation and manipulation is important for applications in spintronic devices. In this contribution, the spin textures at magnetic domain-boundaries stimulated by application of in-plane magnetic fields in a centrosymmetric kagome ferromagnet, FeSn, with thickness gradient are investigated using Lorentz transmission electron microscopy. Switching of the in-plane magnetic field is shown to induce a reversible transformation from magnetic stripes to skyrmions, or , at the interface between differently oriented domains. Micromagnetic simulations combined with experiments reveal that the rotatable anisotropy and thickness dependence of the response to the external in-plane field are the critical factors for the skyrmion formation. In addition, it is shown that the helicity of skyrmions can also be controlled using this dynamic process. The results suggest that magnetic materials with rotatable anisotropy are potential skyrmionic systems and provides a different approach for nucleation and manipulation of skyrmions in spintronic devices.

摘要

理解斯格明子的成核与操控动力学对于自旋电子器件的应用至关重要。在本论文中,我们利用洛伦兹透射电子显微镜研究了具有厚度梯度的中心对称 Kagome 铁磁体 FeSn 中,面内磁场作用下磁畴边界处的自旋纹理。结果表明,面内磁场的切换会在不同取向磁畴的界面处诱导出从磁条到斯格明子的可逆转变。微磁模拟与实验相结合揭示,对外部面内磁场响应的可旋转各向异性和厚度依赖性是斯格明子形成的关键因素。此外,研究表明利用这一动态过程还可以控制斯格明子的螺旋度。这些结果表明,具有可旋转各向异性的磁性材料是潜在的斯格明子体系,并为自旋电子器件中斯格明子的成核与操控提供了一种不同的方法。

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