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Embedded-atom method: Derivation and application to impurities, surfaces, and other defects in metals

Physical review. B, Condensed matter · 1984 · Vol. 29(12) · pp. 6443–6453
Murray S. DawM. I. Baskes

Abstract

We develop the embedded-atom method [Phys. Rev. Lett. 50, 1285 (1983)], based on density-functional theory, as a new means of calculating ground-state properties of realistic metal systems. We derive an expression for the total energy of a metal using the embedding energy from which we obtain several ground-state properties, such as the lattice constant, elastic constants, sublimation energy, and vacancy-formation energy. We obtain the embedding energy and accompanying pair potentials semiempirically for Ni and Pd, and use these to treat several problems: surface energy and relaxation of the (100), (110), and (111) faces; properties of H in bulk metal (H migration, binding of H to vacancies, and lattice expansion in the hydride phase); binding site and adsorption energy of hydrogen on (100), (110), and (111) surfaces; and lastly, fracture of Ni and the effects of hydrogen on the fracture. We emphasize problems with hydrogen and with surfaces because none of these can be treated with pair potentials. The agreement with experiment, the applicability to practical problems, and the simplicity of the technique make it an effective tool for atomistic studies of defects in metals.

Advanced Chemical Physics Studiesnanoparticles nucleation surface interactionsChemical and Physical Properties of MaterialsBinding energyMaterials scienceGround stateAtom (system on chip)HydrogenSublimation (psychology)MetalLattice constantVacancy defectDensity functional theory
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References
Adsorption of hydrogen on palladium single crystal surfaces
Surface Science · 1974 · 694 citations
Pseudo-potentials in the theory of metals
Journal of the Franklin Institute · 1966 · 1,680 citations
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