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Field-controlled ultrafast magnetization dynamics in two-dimensional nanoscale ferromagnetic antidot arrays

机译:二维纳米级铁磁解毒剂阵列中的场控制超快磁化动力学

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摘要

Ferromagnetic antidot arrays have emerged as a system of tremendous interest due to their interesting spin configuration and dynamics as well as their potential applications in magnetic storage, memory, logic, communications and sensing devices. Here, we report experimental and numerical investigation of ultrafast magnetization dynamics in a new type of antidot lattice in the form of triangular-shaped Ni80Fe20 antidots arranged in a hexagonal array. Time-resolved magneto-optical Kerr effect and micromagnetic simulations have been exploited to study the magnetization precession and spin-wave modes of the antidot lattice with varying lattice constant and in-plane orientation of the bias-magnetic field. A remarkable variation in the spin-wave modes with the orientation of in-plane bias magnetic field is found to be associated with the conversion of extended spin-wave modes to quantized ones and vice versa. The lattice constant also influences this variation in spin-wave spectra and spin-wave mode profiles. These observations are important for potential applications of the antidot lattices with triangular holes in future magnonic and spintronic devices.
机译:铁磁解毒剂阵列由于其有趣的自旋结构和动力学特性以及在磁存储,存储器,逻辑,通信和传感设备中的潜在应用而引起了人们的极大兴趣。在这里,我们报告了一种新型的点阵晶格中超快速磁化动力学的实验和数值研究,这种点阵呈三角形排列的六角形Ni80Fe20解毒点。时间分辨的磁光克尔效应和微磁模拟已经被用来研究具有不同晶格常数和偏磁场的面内取向的解毒点阵的磁化进动和自旋波模式。发现自旋波模式随着面内偏置磁场的方向的显着变化与扩展自旋波模式到量化模态的转换有关,反之亦然。晶格常数还影响自旋波谱和自旋波模式轮廓中的这种变化。这些观察对于未来三角铁和自旋电子器件中具有三角孔的解毒点阵的潜在应用非常重要。

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