Theoretical study of the reaction OH + acetone: a possible kinetic effect of the presence of water?
- 23 September 2004
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Physical Chemistry Chemical Physics
- Vol. 6 (22), 5172-5177
- https://doi.org/10.1039/b409900a
Abstract
The effect of water on the molecular mechanism of the reaction of the OH radical with acetone in the homogeneous gas-phase has been studied by quantum chemical computations. The three-molecular reaction system of OH + acetone + H2O has been characterised using molecular parameters, electronic energies and Gibbs free energies computed for the stationary points of the potential energy surface. The MP2 method with a 6-31G(d,p) basis set was employed for geometry optimisation. The electronic energies were obtained at the MP4 and the CCSD(T) level of theory using the 6-311G(d,p) basis set. We have found that the presence of a water molecule changes significantly both the energy profile and free energy profiles of the reaction. A “water-assisted” reaction mechanism has been established in which both the H-abstraction channel and the CO-addition channel occur via intermolecular complexes and transition state structures that involve the water molecule. The activation free energy for the out-of-plane abstraction channel at low temperatures has been found to be significantly smaller than that for the “water-free” system indicating a possible catalytic rate enhancement effect. Abstraction is the predominant reaction route also for the water-assisted reaction as shown by the much larger activation free energy computed for the addition channel. In order to estimate atmospheric concentrations of some intermolecular complexes, we have validated our employed level of theory by computing the equilibrium constant of HO2 + H2O ⇄ HO2⋯H2O at three temperatures and compared them to the values derived from experiments available in the literature. Then, using our theoretical results, we have estimated the tropospheric concentration of OH⋯acetone⋯H2O complexes to be very small, but they are probably detectable under laboratory conditions.Keywords
This publication has 48 references indexed in Scilit:
- Investigation of the effect of water complexes in the determination of peroxy radical ambient concentrations: Implications for the atmosphereJournal of Geophysical Research: Atmospheres, 2003
- Experimental Uptake Study of Ethanol by Water Droplets and Its Theoretical Modeling of Cluster Formation at the InterfaceThe Journal of Physical Chemistry B, 2002
- Mechanism of the reaction of OH radicals with acetone and acetaldehyde at 251 and 296 KPhysical Chemistry Chemical Physics, 2002
- Experimental Evidence for the Existence of the HO2−H2O ComplexThe Journal of Physical Chemistry A, 2000
- Physicochemical Properties of Hydrated Complexes in the Earth's AtmosphereThe Journal of Physical Chemistry A, 2000
- Rate Coefficients for Reaction of OH with Acetone between 202 and 395 KThe Journal of Physical Chemistry A, 2000
- Relation between cooperative effects in cyclic water, methanol/water, and methanol trimers and hydrogen bonds in methanol/water, ethanol/water, and dimethylether/water heterodimersThe Journal of Chemical Physics, 1998
- Existence of a Hydroperoxy and Water (HO2·H2O) Radical ComplexThe Journal of Physical Chemistry A, 1998
- Existence of a Chlorine Oxide and Water (ClO.cntdot.H2O) Radical ComplexJournal of the American Chemical Society, 1995
- Vibrational spectrum of the acetone-water complex: a matrix isolation FTIR and theoretical studyThe Journal of Physical Chemistry, 1993