The effect of the range of the potential on the structures of clusters
- 8 September 1995
- journal article
- research article
- Published by AIP Publishing in The Journal of Chemical Physics
- Vol. 103 (10) , 4234-4249
- https://doi.org/10.1063/1.470729
Abstract
We investigate the structures of clusters bound by the Morse potential by mapping the structure of the global minimum as a function of both cluster size and the range of the pair potential. We consider values of the range parameter appropriate to a loosely bound diatomic molecule (longest), two C60 molecules (shortest), and at regular intervals between these two limits. We have studied all cluster sizes with 25 atoms or less and a selection of sizes containing between 35 and 80 atoms. The effect of decreasing the range of the potential is to destabilize strained structures. For the larger clusters the structure of the global minimum changes from icosahedral to decahedral to face‐centered cubic as the range is decreased. We have also investigated the effects of temperature on the equilibrium structure by performing a model calculation for a 75‐atom cluster.Keywords
This publication has 89 references indexed in Scilit:
- Solid-liquid transition in ultra-fine lead particlesPhilosophical Magazine A, 1995
- Influence of the range of attractive forces on vapor/liquid phase coexistenceThe Journal of Chemical Physics, 1994
- Coexistence of multiple phases in finite systemsPhysical Review Letters, 1993
- Prediction of the phase diagram of rigidmoleculesPhysical Review Letters, 1993
- Icosahedral, decahedral, fcc, and defect-fcc structural models for ArN clusters, N≳500: How plausible are they?The Journal of Chemical Physics, 1993
- A global optimization approach for Lennard-Jones microclustersThe Journal of Chemical Physics, 1992
- Geometry, interaction range, and annealingThe Journal of Chemical Physics, 1992
- The mathematical modelling of cluster geometryJournal of Mathematical Chemistry, 1992
- Computational study of transition dynamics in 55-atom clustersThe Journal of Chemical Physics, 1990
- Structure and binding of Lennard-Jones clusters: 13≤N≤147The Journal of Chemical Physics, 1987