Can Machine Learning Predict Solvation Effects on Energies and Geometries of Highly Charged Molecules?

Abstract Recent machine-learning models have shown that implicit solvation based on continuum solvation models can be learned efficiently with graph neural networks. However, previous studies have focused almost exclusively on neutral or only weakly charged molecules, leaving the strongly charged regime essentially unexplored. Here, we systematically investigate which model architectures and architectural components are required to predict solvation energies and corresponding forces for molecules with total charges ranging from −5 to +5. Using reference data generated from the conductor-like screening model for realistic solvation (COSMO-RS) for water, acetonitrile, and cyclohexane, we show that an explicit and robust treatment of molecular charge is essential for reliable performance across charge states. At the same time, highly charged systems prove easier to learn than neutral and singly charged ones, whose solvation energies depend more strongly on subtle structural effects. Finally, we demonstrate that the machine-learning models enable stable solvent-aware geometry optimization and can be used for efficient conformational sampling in solution.

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Publication Details

Journal
Journal of Chemical Theory and Computation
Published
2026-09-29
DOI
https://doi.org/10.1021/acs.jctc.6c00804
Primary Topic
Machine Learning in Materials Science
Type
article
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article

Can Machine Learning Predict Solvation Effects on Energies and Geometries of Highly Charged Molecules?

Lucas Visscher, Ansgar Pausch, Dario Baum
Journal of Chemical Theory and Computation
Machine Learning in Materials Science
article

Can Machine Learning Predict Solvation Effects on Energies and Geometries of Highly Charged Molecules?

Lucas Visscher, Ansgar Pausch, Dario Baum
article en

Abstract

Abstract Recent machine-learning models have shown that implicit solvation based on continuum solvation models can be learned efficiently with graph neural networks. However, previous studies have focused almost exclusively on neutral or only weakly charged molecules, leaving the strongly charged regime essentially unexplored. Here, we systematically investigate which model architectures and architectural components are required to predict solvation energies and corresponding forces for molecules with total charges ranging from −5 to +5. Using reference data generated from the conductor-like screening model for realistic solvation (COSMO-RS) for water, acetonitrile, and cyclohexane, we show that an explicit and robust treatment of molecular charge is essential for reliable performance across charge states. At the same time, highly charged systems prove easier to learn than neutral and singly charged ones, whose solvation energies depend more strongly on subtle structural effects. Finally, we demonstrate that the machine-learning models enable stable solvent-aware geometry optimization and can be used for efficient conformational sampling in solution.

Journal of Chemical Theory and Computation
University of Münster (DE), Vrije Universiteit Amsterdam (NL)
Openalex Percentile: Top 26%
Machine Learning in Materials Science
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