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Updated: Mar 18, 2026

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Computation of Atmospheric Concentrations of Molecular Clusters from ab initio Thermochemistry
Published on: April 8, 2020
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Small molecule hydration energy and entropy from 3D-RISM
J Johnson1, D A Case, T Yamazaki
1Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, NJ 08854, USA.
Summary
Implicit solvent models estimate solvent effects without complex simulations. Corrected hydration free energies using 3D-RISM show good agreement with experimental data for drug-like molecules.
Area of Science:
- Computational chemistry
- Physical chemistry
- Molecular modeling
Background:
- Implicit solvent models simplify solvent environment calculations for solutes.
- Assessing model accuracy involves comparing computed gas-to-liquid transfer free energies with experimental data.
- Temperature dependence of solvation provides deeper insights into implicit solvent model performance.
Purpose of the Study:
- To compute temperature derivatives of hydration free energies using the 3D-RISM integral equation approach.
- To evaluate the accuracy of implicit solvent models for a large set of drug-like molecules.
- To investigate the effectiveness of linear correction schemes for hydration free energies.
Main Methods:
- Utilized the 3D-RISM integral equation theory to calculate hydration free energies.
- Computed temperature derivatives of hydration free energies for 1123 small molecules.
- Calculated hydration energies and entropies for 74 molecules and compared with experimental data.
Main Results:
- Direct 3D-RISM hydration free energies showed poor agreement with experimental values.
- Previously proposed linear correction schemes significantly improved agreement with experimental hydration free energies.
- These corrections also yielded good agreement for hydration energies and entropies, with minor modifications.
Conclusions:
- Linear correction schemes are effective in improving the accuracy of 3D-RISM for hydration free energies.
- The corrected 3D-RISM approach provides reliable predictions for hydration energies and entropies.
- This work highlights the importance of corrections for accurate solvation free energy predictions in computational chemistry.
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