Abstract

A detailed computational study of the atmospheric reaction of the simplest Criegee intermediate CH2OO with methane has been performed using the density functional theory (DFT) method and high-level calculations. Solvation models were utilized to address the effect of water molecules on prominent reaction steps and their associated energies. The structures of all proposed mechanisms were optimized using B3LYP functional with several basis sets: 6-31G(d), 6-31G (2df,p), 6-311++G(3df,3pd) and at M06-2X/6-31G(d) and APFD/6-31G(d) levels of theory. Furthermore, all structures were optimized at the B3LYP/6-311++G(3df,3pd) level of theory. The intrinsic reaction coordinate (IRC) analysis was performed for characterizing the transition states on the potential energy surfaces. Fifteen different mechanistic pathways were studied for the reaction of Criegee intermediate with methane. Both thermodynamic functions (ΔH and ΔG), and activation parameters (activation energies Ea, enthalpies of activation ΔHǂ, and Gibbs energies of activation ΔGǂ) were calculated for all pathways investigated. The individual mechanisms for pathways A1, A2, B1, and B2, comprise two key steps: (i) the formation of ethyl hydroperoxide (EHP) accompanying with the hydrogen transfer from the alkanes to the terminal oxygen atom of CIs, and (ii) a following unimolecular dissociation of EHP. Pathways from C1 → H1 involve the bimolecular reaction of EHP with different atmospheric species. The photochemical reaction of methane with EHP (pathway E1) was found to be the most plausible reaction mechanism, exhibiting an overall activation energy of 7 kJ mol−1, which was estimated in vacuum at the B3LYP/6-311++G(3df,3pd) level of theory. All of the reactions were found to be strongly exothermic, expect the case of the sulfur dioxide-involved pathway that is predicted to be endothermic. The solvent effect plays an important role in the reaction of EHP with ammonia (pathway F1). Compared with the gas phase reaction, the overall activation energy for the solution phase reaction is decreased by 162 and 140 kJ mol−1 according to calculations done with the SMD and PCM solvation models, respectively.

Details

Title
Computational mechanistic study of the unimolecular dissociation of ethyl hydroperoxide and its bimolecular reactions with atmospheric species
Author
Almatarneh, Mansour H 1 ; Alnajajrah Asmaa 2 ; Altarawneh Mohammednoor 3 ; Zhao, Yuming 4 ; Halim, Mohammad A 5 

 University of Jordan, Department of Chemistry, Amman, Jordan (GRID:grid.9670.8) (ISNI:0000 0001 2174 4509); Memorial University, Department of Chemistry, St. John’s, Canada (GRID:grid.25055.37) (ISNI:0000 0000 9130 6822) 
 University of Jordan, Department of Chemistry, Amman, Jordan (GRID:grid.9670.8) (ISNI:0000 0001 2174 4509) 
 United Arab Emirates University, Department of Chemical and Petroleum Engineering, Al-Ain, UAE (GRID:grid.43519.3a) (ISNI:0000 0001 2193 6666) 
 Memorial University, Department of Chemistry, St. John’s, Canada (GRID:grid.25055.37) (ISNI:0000 0000 9130 6822) 
 University of Arkansas-Fort Smith, Department of Physical Sciences, Fort Smith, USA (GRID:grid.265951.c) (ISNI:0000 0004 0518 0805) 
Publication year
2020
Publication date
2020
Publisher
Nature Publishing Group
e-ISSN
20452322
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
1961043277
Copyright
© The Author(s) 2020. This work is published under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License.