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Updated: Sep 13, 2025

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Ab Initio Molecular Dynamics Study of the Reduction of Acetone by the Hydrated Electron
Wilberth A Narvaez1, Pauf Neupane1, David M Bartels2
1Department of Chemistry, University of Kansas, Lawrence, Kansas 66045, United States.
Abstract:
We have investigated the reaction dynamics of the reduction of acetone by the solvated electron in water using ab initio molecular dynamics simulations at 298 and 373 K. The rate constants derived from the simulations are consistent with experimental observations that the reaction has a low activation energy. Detailed analyses carried out to shed light on the mechanism of the reaction show that solvent reorganization plays a key role as a reaction coordinate, as expected from the Marcus electron transfer theory. However, constrained density functional theory calculations indicate that the electronic coupling is large, placing the reaction in the adiabatic limit. Indeed, the activation energies and rate constants of the simulations are in accordance with the predictions of adiabatic Marcus theory.
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