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1.
Opt Express ; 21(2): 1456-64, 2013 Jan 28.
Artículo en Inglés | MEDLINE | ID: mdl-23389127

RESUMEN

Metamaterials offer the prospect of new science and applications. They have been designed by shaping or changing the material of the individual meta-molecules to achieve properties not naturally attainable. Composite meta-molecules incorporating a magnetic component offer new opportunities. In this work we report on the interaction between a non-magnetic split ring resonator (SRR) and a thin film of yttrium iron garnet (YIG). Strong hybridized resonances are observed. While the SRR is characterized by a magnetic and electric resonance, in practice, it is found that the YIG couples strongly to this symmetric (electric) mode of the SRR. It is also demonstrated that the anti-crossing region provides fertile ground for the creation of elementary excitations such as backward volume magnetostatic waves.


Asunto(s)
Campos Magnéticos , Imanes , Materiales Manufacturados , Micromanipulación/instrumentación , Nanopartículas/química , Nanopartículas/efectos de la radiación , Diseño de Equipo , Análisis de Falla de Equipo , Movimiento (Física)
2.
ACS Appl Mater Interfaces ; 12(46): 52116-52124, 2020 Nov 18.
Artículo en Inglés | MEDLINE | ID: mdl-33156990

RESUMEN

Microwave and heat-assisted magnetic recordings are two competing technologies that have greatly increased the capacity of hard disk drives. The efficiency of the magnetic recording process can be further improved by employing non-collinear spin structures that combine perpendicular and in-plane magnetic anisotropy. Here, we investigate both microwave and optically excited magnetization dynamics in [Co/Pt]/NiFe exchange spring samples. The resulting canted magnetization within the nanoscale [Co/Pt]/NiFe interfacial region allows for optically stimulated magnetization precession to be observed for an extended magnetic field and frequency range. The results can be explained by formation of an imprinted domain structure, which locks the magnetization orientation and makes the structures more robust against external perturbations. Tuning the canted interfacial domain structure may provide greater control of optically excited magnetization reversal and optically generated spin currents, which are of paramount importance for future ultrafast magnetic recording and spintronic applications.

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