Thermodynamic behavior of a model covalent material described by the environment-dependent interatomic potential
- 9 August 2002
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 66 (6) , 064104
- https://doi.org/10.1103/physrevb.66.064104
Abstract
Using molecular-dynamics simulations we study the thermodynamic behavior of a single-component covalent material described by the recently proposed environment-dependent interatomic potential (EDIP). The parametrization of EDIP for silicon exhibits a range of unusual properties typically found in more complex materials, such as the existence of two structurally distinct disordered phases, a density increase upon melting of the low-temperature amorphous phase, and negative thermal-expansion coefficients for both the crystal (at high temperatures) and the amorphous phase (at all temperatures). Structural differences between the two disordered phases also lead to a first-order transition between them, which suggests the existence of a second critical point, as is believed to exist for amorphous forms of frozen water. For EDIP-Si, however, the unusual behavior is associated not only with the open nature of tetrahedral bonding but also with a competition between fourfold (covalent) and fivefold (metallic) coordination. The unusual behavior of the model and its unique ability to simulate the liquid/amorphous transition on molecular-dynamics time scales make it a suitable prototype for fundamental studies of anomalous thermodynamics in disordered systems.Keywords
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This publication has 59 references indexed in Scilit:
- Relationship between structural order and the anomalies of liquid waterNature, 2001
- Environment-dependent interatomic potential for bulk siliconPhysical Review B, 1997
- Liquid-Liquid Phase Transition: Evidence from SimulationsPhysical Review Letters, 1997
- Polymorphic Phase Transitions in Liquids and GlassesScience, 1997
- Modeling of Covalent Bonding in Solids by Inversion of Cohesive Energy CurvesPhysical Review Letters, 1996
- A Low-Temperature Amorphous Phase in a Fragile Glass-Forming SubstanceThe Journal of Physical Chemistry, 1996
- Amorphous polymorphismComputational Materials Science, 1995
- Formation of Glasses from Liquids and BiopolymersScience, 1995
- Density-driven liquid–liquid phase separation in the system AI2O3–Y2O3Nature, 1994
- Visual Observations of the Amorphous-Amorphous Transition in H 2 O Under PressureScience, 1991