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Unusual spin correlations in a nanomagnet

机译:纳米磁铁中不寻常的自旋相关性

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摘要

We show how atomic-scale exchange phenomena can be controlled and exploited in nanoscale itinerant magnets to substantially improve magnetic properties. Cluster-deposition experiments, first-principle simulations, and analytical calculations are used to demonstrate the effect in Co2Si nanoclusters, which have average sizes varying from about 0.6 to 29.5 nm. The cluster-deposited nanoparticles exhibit average magnetic moments of up to 0.70 lB/Co at 10K and 0.49 lB/Co at 300K with appreciable magnetocrystalline anisotropies, in sharp contrast to the nearly vanishing bulk magnetization. The underlying spin correlations and associated cluster-size dependence of the magnetization are explained by a surface induced ferromagnetic spin polarization with a decay length of the order of 1 nm, much larger than the nearest-neighbor interatomic distance in the alloy.
机译:我们展示了如何在纳米级巡回磁体中控制和利用原子级交换现象,从而显着改善磁性能。团簇沉积实验,第一性原理模拟和分析计算用于证明Co2Si纳米团簇的作用,这些团簇的平均尺寸在0.6到29.5 nm之间变化。团簇沉积的纳米颗粒在10K时平均磁矩高达0.70 lB / Co,在300K时平均磁矩高达0.49 lB / Co,具有明显的磁晶各向异性,与几乎消失的体磁化形成鲜明对比。潜在的自旋相关性和相关的磁化簇大小相关性是由表面感应的铁磁自旋极化解释的,其衰减长度为1 nm量级,远大于合金中最接近的原子间距离。

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