Published August 14, 2008 | Version Supplemental Material
Journal Article Open

Calculation of Solvation Free Energies of Charged Solutes Using Mixed Cluster/Continuum Models

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon Howard University

Abstract

We derive a consistent approach for predicting the solvation free energies of charged solutes in the presence of implicit and explicit solvents. We find that some published methodologies make systematic errors in the computed free energies because of the incorrect accounting of the standard state corrections for water molecules or water clusters present in the thermodynamic cycle. This problem can be avoided by using the same standard state for each species involved in the reaction under consideration. We analyze two different thermodynamic cycles for calculating the solvation free energies of ionic solutes: (1) the cluster cycle with an n water cluster as a reagent and (2) the monomer cycle with n distinct water molecules as reagents. The use of the cluster cycle gives solvation free energies that are in excellent agreement with the experimental values obtained from studies of ion−water clusters. The mean absolute errors are 0.8 kcal/mol for H^+ and 2.0 kcal/mol for Cu2^+. Conversely, calculations using the monomer cycle lead to mean absolute errors that are >10 kcal/mol for H^+ and >30 kcal/mol for Cu2^+. The presence of hydrogen-bonded clusters of similar size on the left- and right-hand sides of the reaction cycle results in the cancelation of the systematic errors in the calculated free energies. Using the cluster cycle with 1 solvation shell leads to errors of 5 kcal/mol for H^+ (6 waters) and 27 kcal/mol for Cu2^+ (6 waters), whereas using 2 solvation shells leads to accuracies of 2 kcal/mol for Cu2^+ (18 waters) and 1 kcal/mol for H^+ (10 waters).

Additional Information

© 2008 American Chemical Society. Received 9 October 2007. Published online 23 July 2008. Published in print 1 August 2008. Funding for this work was provided by the National Science Foundation (NIRT CTS award no. 0506951) and by the U.S. Environmental Protection Agency (STAR grant RD-83252501). The computational facilities used in these studies were funded by grants from ARO-DURIP, ONR-DURIP, and NSF-MRI.

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Additional details

Identifiers

Eprint ID
79197
DOI
10.1021/jp802665d
Resolver ID
CaltechAUTHORS:20170719-092052697

Funding

NSF
CTS-0506951
Environmental Protection Agency (EPA)
RD-83252501
Army Research Office (ARO)
Office of Naval Research (ONR)

Dates

Created
2017-07-19
Created from EPrint's datestamp field
Updated
2021-11-15
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