Magnetism of small V clusters embedded in a Cu fcc matrix: an ab initio study
R. E. Felix-Medina, M. A. Leyva-Lucero, R. A. Guirado-Lopez, S., Meza-Aguilar

TL;DR
This study uses first-principles DFT calculations to explore the magnetic and electronic properties of small vanadium clusters embedded in a copper matrix, revealing complex magnetic behaviors and structural influences.
Contribution
It provides a comprehensive analysis of various V cluster structures in Cu, highlighting their magnetic solutions and electronic structures, which was not extensively studied before.
Findings
V clusters tend to form compact arrays in Cu matrix
Complex peaked density of states near Fermi level varies with structure
Multiple magnetic states with small energy differences are possible
Abstract
We present extensive first principles density functional theory (DFT) calculations dedicated to analyze the magnetic and electronic properties of small V 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 dimers having different interatomic distance and varying local atomic environment, iii) V and iv) V clusters for which we assume compact as well as 2- and 1-dimensional atomic configurations and finally, in the case of the v) V and vi) V 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…
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