Abstract

The equilibrium geometry, binding energy, and electronic structure of small metal particles are investigated using self-consistent one-electron local-density theory. Results for ${\mathrm{Cu}}_{2}$, ${\mathrm{Cu}}_{4}$, and fcc ${\mathrm{Cu}}_{13}$ and ${\mathrm{Cu}}_{79}$ clusters show an increasing equilibrium bond length with cluster size, and a stiffening of the ${a}_{1}$ vibrational force constants. The calculated binding energies of 1.05 (${\mathrm{Cu}}_{2}$), 1.26 (${\mathrm{Cu}}_{4}$), 2.19 (${\mathrm{Cu}}_{13}$), and 3.03 (${\mathrm{Cu}}_{79}$) eV/atom compare well with the experimental values of 1.00 (${\mathrm{Cu}}_{2}$) and 3.50 (bulk) eV/atom. For ${\mathrm{Cu}}_{2}$ the theoretical bond length and vibrational frequency are found to be in good agreement with experiment. Densities of states and core-level shifts are analyzed to display cluster-size effects. Charge-density maps are used to display the buildup of metallic bonding charge with increasing particle size.

Keywords

Binding energyBond lengthAtomic physicsAtom (system on chip)Materials scienceCopperCluster (spacecraft)Cluster sizeElectronic structureMetalCharge (physics)PhysicsCrystallographyMolecular physicsCondensed matter physicsCrystal structureChemistry

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Publication Info

Year
1983
Type
article
Volume
27
Issue
4
Pages
2132-2144
Citations
414
Access
Closed

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B. Delley, D. E. Ellis, A. J. Freeman et al. (1983). Binding energy and electronic structure of small copper particles. Physical review. B, Condensed matter , 27 (4) , 2132-2144. https://doi.org/10.1103/physrevb.27.2132

Identifiers

DOI
10.1103/physrevb.27.2132