Vacancy concentration in Al from combined first-principles and model potential calculations
- 5 February 2003
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 67 (5), 054101
- https://doi.org/10.1103/physrevb.67.054101
Abstract
We present a comprehensive study of vacancy formation enthalpies and entropies in aluminum. The calculations are done in the framework of the local-density and generalized-gradient approximations in the density-functional formalism. To assess anharmonic contributions to the formation free energies, we use an interatomic potential with parameters determined from density-functional-theory calculations. We find that the binding energy for the nearest-neighbor divacancy is negative, i.e., it is energetically unstable. The entropy contributions slightly stabilize the divacancy but also the binding free energy at the melting temperature is found to be negative. We show that the anharmonic atomic vibrations explain the non-Arrhenius temperature dependence of the vacancy concentration in contrast to the commonly accepted interpretation of the experimental data in terms of the monovacancy-divacancy model.Keywords
This publication has 41 references indexed in Scilit:
- Measures of crystal vacanciesNature, 1999
- Equilibrium vacancies and thermophysical properties of metalsPhysics Reports, 1998
- Absolute vacancy concentrations in noble metals and some of their alloysJournal of Physics and Chemistry of Solids, 1994
- Feature article formation of vacancies in noble metals and alloysPhilosophical Magazine A, 1992
- A monovacancy-divacancy model interpretation of positron annihilation measurements in aluminiumJournal of Physics F: Metal Physics, 1984
- Positron annihilation spectroscopy of the equilibrium vacancy ensemble in aluminiumJournal of Physics F: Metal Physics, 1984
- Vacancy defect mobilities and binding energies obtained from annealing studiesJournal of Nuclear Materials, 1978
- Interaction entre lacunes dans l'aluminium trempé à 4°KPhilosophical Magazine, 1973
- Analysis of tracer and nuclear magnetic resonance measurements of self‐diffusion in aluminiumPhysica Status Solidi (b), 1971
- Quenching and Annealing of Zone-Refined AluminumPhysical Review B, 1964