Calculation of Coulomb interactions in two-dimensionally periodic systems
- 1 September 1997
- journal article
- research article
- Published by Taylor & Francis in Molecular Physics
- Vol. 92 (1) , 19-25
- https://doi.org/10.1080/002689797170563
Abstract
A generalized implementation is presented of the Lekner method (Lekner, J., 1991, Physica A, 176, 485) of calculating Coulomb interactions in two-dimensionally periodic systems. The generalized scheme eliminates the restriction on the shape of the primary cell, so it is now applicable to systems with non-rectangular shape. The generalized scheme retains the simplicity of the original method so it is easy to incorporate it into molecular dynamics and Monte Carlo codes. Comparisons are made with two other methods for calculating long range interactions in two-dimensionally periodic systems which are based on a Ewald type approach (Heyes, D. M., Barber, M., and Clarke, J. H. R., 1977, J. chem. Soc. Faraday Trans ii, 73, 1485; Hautman, J., and Klein, M. L., 1992, Molec. Phys., 75, 379). The results show that the generalized Lekner method is superior in terms of accuracy, and that the speed of the new implementation is comparable with the method devised by Hautman and Klein.Keywords
This publication has 7 references indexed in Scilit:
- Summation of electrostatic interactions in quasi-two-dimensional simulationsMolecular Physics, 1996
- Pressure tensor of partial-charge and point-dipole lattices with bulk and surface geometriesPhysical Review B, 1994
- An Ewald summation method for planar surfaces and interfacesMolecular Physics, 1992
- Summation of Coulomb fields in computer-simulated disordered systemsPhysica A: Statistical Mechanics and its Applications, 1991
- Summation of dipolar fields in simulated liquid-vapour interfacesPhysica A: Statistical Mechanics and its Applications, 1989
- Molecular dynamics computer simulation of surface properties of crystalline potassium chlorideJournal of the Chemical Society, Faraday Transactions 2: Molecular and Chemical Physics, 1977
- Die Berechnung optischer und elektrostatischer GitterpotentialeAnnalen der Physik, 1921