The stability of ionic crystal surfaces
- 28 November 1979
- journal article
- Published by IOP Publishing in Journal of Physics C: Solid State Physics
- Vol. 12 (22) , 4977-4984
- https://doi.org/10.1088/0022-3719/12/22/036
Abstract
When there is a dipole moment in the repeat unit perpendicular to the surface in an ionic crystal, lattice sums in the electrostatic energy diverge and the calculated surface energy is infinite. The cause of this divergence is demonstrated and the surfaces of any ionic or partly ionic material are classified into three types. Type 1 is neutral with equal numbers of anions and cations on each plane and type 2 is charged but there is no dipole moment perpendicular to the surface because of the symmetrical stacking sequence. Both these surfaces should have modest surface energies and may be stable with only limited relaxations of the ions in the surface region. The type 3 surface is charged and has a dipole moment in the repeat unit perpendicular to the surface. This surface can only be stabilised by substantial reconstruction. These conclusions are important for the analysis of the surface structure of ionic crystals.Keywords
This publication has 21 references indexed in Scilit:
- Atomic geometry of semiconductor surfacesCritical Reviews in Solid State and Materials Sciences, 1978
- Ion-scattering structure studies of UO2 surfacesSurface Science, 1978
- LEED calculations for the NiO(100) surfaceSurface Science, 1977
- Molecular dynamics computer simulation of surface properties of crystalline potassium chlorideJournal of the Chemical Society, Faraday Transactions 2: Molecular and Chemical Physics, 1977
- A LEED study of MgO(100). III. Theory at off-normal incidenceJournal of Physics C: Solid State Physics, 1976
- A LEED study of MgO(100). II. Theory at normal incidenceJournal of Physics C: Solid State Physics, 1975
- Low-Energy-Electron-Diffraction Intensity Profiles and Electronic Energy Bands for Lithium FluoridePhysical Review B, 1973
- Application of a Shell Model to the Calculation of the Surface Distortion in Alkali Halide CrystalsThe Journal of Chemical Physics, 1968
- Ionic crystal surfacesCanadian Journal of Chemistry, 1967
- Calculation of Cohesive and Surface Energies of Thorium and Uranium DioxidesJournal of the American Ceramic Society, 1963