磁性纳米结构自旋波模式光谱的测量与模拟比较

H T Nembach, R D McMichael, M L Schneider, J M Shaw, T J Silva
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摘要

考虑到纳米磁体的磁化动力学对磁性器件和传感器的开发和优化的重要性,我们测量了椭圆纳米磁体的自旋波谱并建立了模型。利用外差磁光微波显微镜测量了电子束光刻制备的短轴标称为200 nm和100 nm的Ni80Fe20纳米磁体的铁磁共振谱。同样的纳米磁铁的扫描电子显微镜图像被用来定义微磁模拟的元素形状。实测光谱显示名义上相同的纳米磁体之间存在显著差异,这只能部分归因于图像化过程中不受控制的形状变化,正如测量光谱和模拟光谱之间有限的一致性所证明的那样。在模拟中,在纳米磁铁的边缘加入一个磁化和交换降低的区域,提高了测量和模拟之间的一致性。我们的研究结果表明,减少单个磁性随机存取存储器元件之间的形状变化可以潜在地提高它们的性能。然而,基于自旋波谱分析和建模的纳米磁体材料参数的明确确定仍然存在问题。
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Comparison of measured and simulated spin-wave mode spectra of magnetic nanostructures.

Motivated by the importance of magnetization dynamics in nanomagnets for the development and optimization of magnetic devices and sensors, we measured and modeled spin wave spectra in patterned elliptical nanomagnets. Ferromagnetic resonance spectra for multiple nanomagnets of Ni80Fe20, fabricated by electron-beam lithography to have nominal short-axes of 200 nm or 100 nm, were measured by use of heterodyne magneto-optical microwave microscopy. Scanning electron microscope images taken of the same nanomagnets were used to define element shapes for micromagnetic simulations. The measured spectra show significant differences between nominally identical nanomagnets, which could be only partially attributed to uncontrolled shape variations in the patterning process, as evidenced by the limited agreement between the measured and simulated spectra. Agreement between measurements and simulations was improved by including a zone of reduced magnetization and exchange at the edges of the nanomagnets in the simulations. Our results show that the reduction of shape variations between individual magnetic random-access memory elements can potentially improve their performance. However, unambiguous determination of materials parameters in nanomagnets based on analysis and modeling of spin wave spectra remains problematic.

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