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Published on: September 4, 2015
Predicting miscibility of binary liquids from small cluster QCE calculations.
Johannes Ingenmey1, Michael von Domaros1, Barbara Kirchner1
1Mulliken Center for Theoretical Chemistry, Universität Bonn, Beringstr. 4, D-53115 Bonn, Germany.
The quantum cluster equilibrium method accurately predicts solvent mixing behavior for acetone-based systems. While effective for many binary solvent mixtures, it shows limitations with water-containing systems.
Area of Science:
- Physical Chemistry
- Computational Chemistry
- Thermodynamics
Background:
- Modeling molecular solvent mixtures is crucial for understanding chemical processes.
- Accurate prediction of thermodynamic properties like Gibbs energy of mixing is essential.
- Existing methods often require extensive experimental data or high computational cost.
Purpose of the Study:
- To apply the quantum cluster equilibrium method to model binary molecular solvent systems.
- To minimize computational effort and experimental input for solvent mixture modeling.
- To evaluate the method's accuracy for miscible and immiscible solvent pairs.
Main Methods:
- Utilized the quantum cluster equilibrium method with small cluster sizes (n=3).
- Employed the low-cost PBEh-3c functional for cluster optimization.
- Approximated empirical parameters using linear interpolation, reducing reliance on binary system data.
Main Results:
- Thermodynamic functions of pure liquids showed good agreement with experimental data.
- Achieved high accuracy (≈0.25 kJ/mol) for Gibbs energy of mixing in non-water systems.
- Correctly predicted mixing behavior for acetone/acetonitrile, acetone/benzene, and acetone/water systems.
- Accurately predicted the immiscibility of benzene/water, with a minor error at high benzene concentrations.
Conclusions:
- The quantum cluster equilibrium method, even with approximations and small cluster sets, effectively predicts mixing behavior for acetone-based binary solvent systems.
- The approach demonstrates potential for reducing experimental data requirements in solvent mixture modeling.
- Further refinement may be needed for accurate modeling of water-containing systems using small clusters.
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