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The ability to automatically extend and improve molecular force fields to accurately describe an ever wider range of compounds is a key enabler for the application of molecular modelling of chemicals and materials in industry. In this work we have developed a set of tools to process structural data available in well-known databases, to find deficiencies in the force field, and where necessary, automatically fit force- field parameters to on-the-fly calculated quantum data based on Density Functional Theory, supplemented by experimental data. The protocols have been applied to structures from the Maybridge, PoLyInfo and ILThermo databases, covering drug-like molecules, polymers and ionic liquids respectively. We demonstrate that the new version of the force field can type all structures in the extended data set without missing parameters, with a similar high-quality prediction of geometry (bonds, angles, torsions), energy and forces of earlier versions.
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Reinier Akkermans
Radboud University Nijmegen
Neil A. Spenley
Dassault Systèmes (United Kingdom)
Struan H. Robertson
Dassault Systèmes (United Kingdom)
Molecular Simulation
Dassault Systèmes (United Kingdom)
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Akkermans et al. (Mon,) studied this question.
synapsesocial.com/papers/69d6890b2c8f994bcf1f2e9d — DOI: https://doi.org/10.1080/08927022.2020.1808215
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