Applications of a tight-binding total energy method for transition and noble metals: Elastic Constants, Vacancies, and Surfaces of Monatomic Metals
Michael J. Mehl, Dimitrios A. Papaconstantopoulos
Abstract
A recent tight-binding scheme provides a method for extending the results of first principles calculations to regimes involving 102 - 103 atoms in a unit cell. The method uses an analytic set of two-center, non-orthogonal tight-binding parameters, on-site terms which change with the local environment, and no pair potential. The free parameters in this method are chosen to simultaneously fit band structures and total energies from a set of first-principles calculations for monatomic fcc and bcc crystals. To check the accuracy of this method we evaluate structural energy differences, elastic constants, vacancy formation energies, and surface energies, comparing to first-principles calculations and experiment. In most cases there is good agreement between this theory and experiment. We present a detailed account of the method, a complete set of tight-binding parameters, and results for twenty-nine of the alkaline earth, transition and noble metals.
Create a lesson
Related papers
Theory of Alkali Induced Reconstruction of the Cu(100) Surface
S. Quassowski, K. Hermann
A Model for the Thermal Expansion of Ag(111) and other Metal Surfaces
Shobhana Narasimhan, Matthias Scheffler
Ab initio molecular dynamics study of the desorption of D2 from Si(100)
Axel Gross, Michel Bockstedte, Matthias Scheffler
Diffusivity of Ga and Al adatoms on GaAs(001)
A. Kley, M. Scheffler
Steering and isotope effects in the dissociative adsorption of H2/Pd(100)
Axel Gross, Matthias Scheffler
Strained tetragonal states and Bain paths in metals
P. Alippi, P. M. Marcus, M. Scheffler