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圆形铁磁纳米点中的高阶涡旋各向异性模式。

Higher order vortex gyrotropic modes in circular ferromagnetic nanodots.

作者信息

Ding Junjia, Kakazei Gleb N, Liu Xinming, Guslienko Konstantin Y, Adeyeye Adekunle O

机构信息

Information Storage Materials Laboratory, Department of Electrical and Computer Engineering, National University of Singapore, Singapore-117576, Singapore.

1] Departamento de Física de Materiales, Facultad de Química, Universidad del País Vasco, 20018 San Sebastián, Spain [2] IKERBASQUE, the Basque Foundation for Science, 48011 Bilbao, Spain.

出版信息

Sci Rep. 2014 Apr 25;4:4796. doi: 10.1038/srep04796.

Abstract

Magnetic vortex that consists of an in-plane curling magnetization configuration and a needle-like core region with out-of-plane magnetization is known to be the ground state of geometrically confined submicron soft magnetic elements. Here magnetodynamics of relatively thick (50-100 nm) circular Ni80Fe20 dots were probed by broadband ferromagnetic resonance in the absence of external magnetic field. Spin excitation modes related to the thickness dependent vortex core gyrotropic dynamics were detected experimentally in the gigahertz frequency range. Both analytical theory and micromagnetic simulations revealed that these exchange dominated modes are flexure oscillations of the vortex core string with n = 0,1,2 nodes along the dot thickness. The intensity of the mode with n = 1 depends significantly on both dot thickness and diameter and in some cases is higher than the one of the uniform mode with n = 0. This opens promising perspectives in the area of spin transfer torque oscillators.

摘要

由面内卷曲磁化结构和具有面外磁化的针状核心区域组成的磁涡旋,被认为是几何受限的亚微米软磁元件的基态。在此,通过在无外部磁场的情况下进行宽带铁磁共振,探测了相对较厚(50 - 100纳米)的圆形Ni80Fe20点的磁动力学。在吉赫兹频率范围内通过实验检测到了与厚度相关的涡旋核心旋转变动力学相关的自旋激发模式。解析理论和微磁模拟均表明,这些以交换为主的模式是涡旋核心弦沿着点的厚度具有n = 0、1、2个节点的弯曲振荡。n = 1模式的强度显著依赖于点的厚度和直径,并且在某些情况下高于n = 0的均匀模式。这在自旋转移扭矩振荡器领域开辟了有前景的前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d7c2/3999443/fcd5ba42004e/srep04796-f1.jpg

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