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COMPASS:  An ab Initio Force-Field Optimized for Condensed-Phase ApplicationsOverview with Details on Alkane and Benzene Compounds

The Journal of Physical Chemistry B · 1998 · Vol. 102(38) · pp. 7338–7364
Huai Sun

Abstract

A general all-atom force field for atomistic simulation of common organic molecules, inorganic small molecules, and polymers was developed using state-of-the-art ab initio and empirical parametrization techniques. The valence parameters and atomic partial charges were derived by fitting to ab initio data, and the van der Waals (vdW) parameters were derived by conducting MD simulations of molecular liquids and fitting the simulated cohesive energies and equilibrium densities to experimental data. The combined parametrization procedure significantly improves the quality of a general force field. Validation studies based on large number of isolated molecules, molecular liquids and molecular crystals, representing 28 molecular classes, show that the present force field enables accurate and simultaneous prediction of structural, conformational, vibrational, and thermophysical properties for a broad range of molecules in isolation and in condensed phases. Detailed results of the parametrization and validation for alkane and benzene compounds are presented.

Advanced Chemical Physics StudiesQuantum, superfluid, helium dynamicsMaterial Dynamics and PropertiesAb initioForce field (fiction)van der Waals forceParametrization (atmospheric modeling)ChemistryMoleculeComputational chemistryAlkaneMolecular dynamicsAb initio quantum chemistry methods
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