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Updated: Jun 13, 2025

Computation of Atmospheric Concentrations of Molecular Clusters from ab initio Thermochemistry
Published on: April 8, 2020
Density functional theory (DFT) study of water autoionization in solvated clusters
Kurt W Kolasinski1, Alexa M Salkowski1
1Department of Chemistry, West Chester University, West Chester, Pennsylvania 19383, USA.
Accurately modeling water autoionization requires specific cluster sizes, not exponential convergence. The study found that n=21 water clusters best capture bulk water energetics for solvation studies.
Area of Science:
- Physical Chemistry
- Computational Chemistry
- Materials Science
Background:
- Accurate modeling of water autoionization and solvation energetics is crucial for understanding chemical processes.
- Previous studies often assumed exponential convergence in thermodynamic calculations, potentially leading to inaccuracies.
- The cluster-continuum method offers a promising approach for simulating complex aqueous systems.
Purpose of the Study:
- To determine the minimal basis set and cluster size for accurate density functional theory (DFT) modeling of water autoionization.
- To establish the minimum number of explicit water molecules needed to accurately represent solvation energetics.
- To investigate the convergence behavior of water autoionization thermodynamics.
Main Methods:
- Implementation of a cluster-continuum method using density functional theory (DFT).
- Modeling of water clusters and charged species derived from water.
- Utilizing RPBE-D3 and ωB97X-D exchange-correlation functionals with the 6-311+G** basis set.
Main Results:
- Water autoionization thermodynamics converge via a modified power law, not exponentially, enabling accurate Gibbs energy calculations with smaller clusters.
- The n=21 cluster size is identified as the first to effectively mimic bulk water, capturing first and second solvation shell influences.
- Clusters with n ≥ 21 yield good approximations of the free energy change at 298 K, despite limitations in individual enthalpy/entropy modeling by the functionals.
Conclusions:
- The study provides critical insights into the computational requirements for accurate water autoionization and solvation modeling.
- The findings challenge previous assumptions about convergence rates, offering a more realistic understanding of thermodynamic behavior.
- The identified n=21 cluster size serves as a benchmark for future DFT studies on water energetics.
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