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Magnetism of small V clusters embedded in a Cu fcc matrix: An ab initio study

机译:Cu fcc基质中嵌入的小V团簇的磁性:从头算研究

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We present extensive first principles density functional theory (DFT) calculations dedicated to analyze the magnetic and electronic properties of small Vn clusters (n = 1, 2, 3, 4, 5, 6) embedded in a Cu fcc matrix. We consider different cluster structures such as: (i) a single V impurity, (ii) several V _2 dimers having different interatomic distance and varying local atomic environment, (iii) V _3 and (iv) V _4 clusters for which we assume compact as well as 2-and 1-dimensional atomic configurations and finally, in the case of the (v) V _5 and (vi) V _6 structures we consider a square pyramid and a square bipyramid together with linear arrays, respectively. In all cases, the V atoms are embedded as substitutional impurities in the Cu network. In general, and as in the free standing case, we have found that the V clusters tend to form compact atomic arrays within the cooper matrix. Our calculated non spin-polarized density of states at the V sites shows a complex peaked structure around the Fermi level that strongly changes as a function of both the interatomic distance and local atomic environment, a result that anticipates a non trivial magnetic behavior. In fact, our DFT calculations reveal, in each one of our clusters systems, the existence of different magnetic solutions (ferromagnetic, ferrimagnetic, and antiferromagnetic) with very small energy differences among them, a result that could lead to the existence of complex finite-temperature magnetic properties. Finally, we compare our results with recent experimental measurements.
机译:我们提供广泛的第一原理密度泛函理论(DFT)计算,专用于分析嵌入在Cu fcc矩阵中的小Vn簇(n = 1、2、3、4、5、6)的磁和电子性质。我们考虑不同的簇结构,例如:(i)一个V杂质,(ii)几个具有不同原子间距离和变化的局部原子环境的V _2二聚体,(iii)V _3和(iv)V _4簇,我们假设它们为紧凑型以及二维和一维原子构型,最后,在(v)V _5和(vi)V _6结构的情况下,我们分别考虑方形金字塔和方形双锥体以及线性阵列。在所有情况下,V原子均作为取代杂质嵌入Cu网络中。通常,和在独立情况下一样,我们发现V团簇倾向于在库珀矩阵内形成紧凑的原子阵列。我们计算得出的V位置处的非自旋极化态密度显示出费米能级附近的复杂峰结构,该结构会随着原子间距离和局部原子环境的变化而发生强烈变化,从而预示了不平凡的磁行为。实际上,我们的DFT计算揭示出,在我们每个集群系统中,存在着具有非常小的能量差的不同磁解(铁磁,亚铁磁和反铁磁),结果可能导致存在复杂的有限温度磁性能。最后,我们将结果与最近的实验测量结果进行比较。

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