磁性纳米管中自旋波诱导的天融运动

Tijjani Abdulrazak, Xuejuan Liu, Zhenyu Wang, Yunshan Cao, Peng Yan
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引用次数: 0

摘要

在这项研究中,我们通过微磁模拟研究了磁性纳米管中自旋波驱动的天幕运动。我们的主要贡献包括:证明了无边纳米管几何形状中天离子的稳定性和增强的流动性,从而防止了在边界处的破坏--这是平面几何形状中常见的问题。我们探索了微波的阻尼系数、振幅和频率对天幕动力学的影响,发现了以加速和减速阶段为特征的非均匀速度曲线。我们的研究结果表明,与平面模型相比,纳米管中的天离子霍尔效应被显著放大,并与自旋波参数有特定的关系。值得注意的是,在不同的阻尼系数和频率下,天电荷霍尔角保持一致,但当驱动场振幅超过临界值时,天电荷霍尔角会发生变化。这些发现为自旋电子应用中的天电离子操纵提供了见解,凸显了磁子器件中高速、高效信息传输的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Skyrmion motion induced by spin-waves in magnetic nanotubes
In this study, we investigate the skyrmion motion driven by spin waves in magnetic nanotubes through micromagnetic simulations. Our key contributions include demonstrating the stability and enhanced mobility of skyrmions in the edgeless nanotube geometry, which prevents destruction at boundaries—a common issue in planar geometries. We explore the influence of the damping coefficient, amplitude, and frequency of microwaves on skyrmion dynamics, revealing a non-uniform velocity profile characterized by acceleration and deceleration phases. Our results show that the skyrmion Hall effect is significantly amplified in nanotubes compared to planar models, with specific dependencies on the spin-wave parameters. Notably, the skyrmion Hall angle remains consistent across varying damping coefficients and frequencies but changes when the driving field amplitude exceeds a threshold value. These findings provide insights into skyrmion manipulation for spintronic applications, highlighting the potential for high-speed and efficient information transport in magnonic devices.
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