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Accuracy of free energies of hydration for organic molecules from 6-31g*-derived partial charges

✍ Scribed by Heather A. Carlson; Toan B. Nguyen; Modesto Orozco; William L. Jorgensen


Book ID
102881877
Publisher
John Wiley and Sons
Year
1993
Tongue
English
Weight
880 KB
Volume
14
Category
Article
ISSN
0192-8651

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✦ Synopsis


Abstract

Absolute free energies of hydration have been computed for 13 diverse organic molecules using partial charges derived from ab initio 6‐31G* wave functions. Both Mulliken charges and charges fit to the electrostatic potential surface (EPS) were considered in conjunction with OPLS Lennard–Jones parameters for the organic molecules and the TIP4P model of water. Monte Carlo simulations with statistical perturbation theory yielded relative free energies of hydration. These were converted to absolute quantities through perturbations to reference molecules for which absolute free energies of hydration had been obtained previously in TIP4P water. The average errors in the computed absolute free energies of hydration are 1.1 kcal/mol for the 6‐31G* EPS charges and 4.0 kcal/mol for the Mulliken charges. For the EPS charges, the largest individual errors are under 2 kcal/mol except for acetamide, in which case the error is 3.7 kcal/mol. The hydrogen bonding between the organic solutes and water has also been characterized. Β© John Wiley & Sons, Inc.


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Comparison of 6-31G*-based MST/SCRF and
✍ Modesto Orozco; William L. Jorgensen; F.J. Luque πŸ“‚ Article πŸ“… 1993 πŸ› John Wiley and Sons 🌐 English βš– 635 KB

A comparison between Miertus-Scrocco-Tomasi (MST) SCRF and free energy perturbation (FEP) estimates of the free energy of hydration of eight small neutral molecules is presented. In both cases, the 6-31G' molecular electrostatic potential is used to describe the electrostatic properties of the molec