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Influence of the packing fraction and host matrix on the magnetoelastic anisotropy in Ni nanowire composite arrays

机译:堆积率和基质对镍纳米线复合阵列磁弹性各向异性的影响

摘要

The influence of the packing fraction on thermally induced magnetoelastic effects has been studied in Ni nanowires embedded in polycarbonate, poly(vinylidene difluoride), and alumina nanoporous membranes of different porosities for temperatures between 77 K and 345 K. For nanowires embedded in polymer membranes, the contrasting shift in the ferromagnetic resonance frequency when the temperature is either above or below ambient temperature is consistent with the occurrence of uniaxial magnetoelastic anisotropy effects due to the large thermal expansion coefficient mismatch between the metal nanowires and the membrane. A model which considers the influence of the nanowires packing fraction and the membrane material on the magnetoelastic effects, arising from the matrix-assisted deformation process, is proposed. The model is able to successfully explain the experimentally observed effects for the Ni nanowire arrays embedded in the different porous membranes and their variation with the packing fraction. The possibility to modulate the magnetic anisotropy of such nanocomposites by an appropriate choice of membrane material, packing fraction, and sample temperature is of considerable importance to achieve magnetically tunable devices.
机译:在埋入聚碳酸酯,聚偏二氟乙烯和多孔度不同的氧化铝纳米多孔膜中的Ni纳米线中,对于77 onK至345 inducedK的温度,研究了填充分数对热感应磁弹性效应的影响。对于埋在聚合物膜中的纳米线,当温度高于或低于环境温度时,铁磁共振频率的对比变化与金属纳米线与膜之间的热膨胀系数不匹配导致的单轴磁弹性各向异性效应相一致。提出了考虑基体辅助变形过程引起的纳米线堆积率和膜材料对磁弹性效应的影响的模型。该模型能够成功解释嵌入不同多孔膜中的镍纳米线阵列的实验观察到的效果以及它们随填充分数的变化。通过适当选择膜材料,填充分数和样品温度来调节此类纳米复合材料的磁各向异性对实现可磁调谐器件至关重要。

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