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Computer simulation of local order in condensed phases of silicon

Physical review. B, Condensed matter · 1985 · Vol. 31(8) · pp. 5262–5271
Frank H. StillingerThomas A. Weber

Abstract

A model potential-energy function comprising both two- and three-atom contributions is proposed to describe interactions in solid and liquid forms of Si. Implications of this potential are then explored by molecular-dynamics computer simulation, using 216 atoms with periodic boundary conditions. Starting with the diamond-structure crystal at low temperature, heating causes spontaneous nucleation and melting. The resulting liquid structurally resembles the real Si melt. By carrying out steepest-descent mappings of system configurations onto potential-energy minima, two main conclusions emerge: (1) a temperature-independent inherent structure underlies the liquid phase, just as for ``simple'' liquids with only pair interactions; (2) the Lindemann melting criterion for the crystal apparently can be supplemented by a freezing criterion for the liquid, where both involve critical values of appropriately defined mean displacements from potential minima.

Thermodynamic and Structural Properties of Metals and AlloysHigh-pressure geophysics and materialsMaterial Dynamics and PropertiesMaxima and minimaNucleationMaterials scienceMolecular dynamicsPair potentialPotential energyAtom (system on chip)DiamondChemical physicsSilicon
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