Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and Kinetics

The mechanism and kinetics for the reaction of the HO2 radical with the ethyl (C2H5) radical have been investigated theoretically. The electronic structure information of the potential energy surface (PES) is obtained at the MP2/6-311++G(d,p) level of theory, and the single-point energies are refine...

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Main Authors: Nan-Nan Wu, Ming-Zhe Zhang, Shun-Li Ou-Yang, Liang Li
Format: Article
Language:English
Published: MDPI AG 2018-08-01
Series:Molecules
Subjects:
HO2
Online Access:http://www.mdpi.com/1420-3049/23/8/1919
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spelling doaj-3c78899ffc1843caabe3549f918fcf032020-11-25T01:08:07ZengMDPI AGMolecules1420-30492018-08-01238191910.3390/molecules23081919molecules23081919Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and KineticsNan-Nan Wu0Ming-Zhe Zhang1Shun-Li Ou-Yang2Liang Li3Key Laboratory of Integrated Exploitation of Bayan Obo Multi-Metal Resources, Inner Mongolia University of Science &Technology, Baotou 014010, ChinaKey Laboratory of Integrated Exploitation of Bayan Obo Multi-Metal Resources, Inner Mongolia University of Science &Technology, Baotou 014010, ChinaKey Laboratory of Integrated Exploitation of Bayan Obo Multi-Metal Resources, Inner Mongolia University of Science &Technology, Baotou 014010, ChinaCollege of Physics, Jilin University, Changchun 130012, ChinaThe mechanism and kinetics for the reaction of the HO2 radical with the ethyl (C2H5) radical have been investigated theoretically. The electronic structure information of the potential energy surface (PES) is obtained at the MP2/6-311++G(d,p) level of theory, and the single-point energies are refined by the CCSD(T)/6-311+G(3df,2p) level of theory. The kinetics of the reaction with multiple channels have been studied by applying variational transition-state theory (VTST) and Rice–Ramsperger–Kassel–Marcus (RRKM) theory over wide temperature and pressure ranges (T = 220–3000 K; P = 1 × 10−4–100 bar). The calculated results show that the HO2 radical can attack C2H5 via a barrierless addition mechanism to form the energy-rich intermediate IM1 C2H5OOH (68.7 kcal/mol) on the singlet PES. The collisional stabilization intermediate IM1 is the predominant product of the reaction at high pressures and low temperatures, while the bimolecular product P1 C2H5O + OH becomes the primary product at lower pressures or higher temperatures. At the experimentally measured temperature 293 K and in the whole pressure range, the reaction yields P1 as major product, which is in good agreement with experiment results, and the branching ratios are predicted to change from 0.96 at 1 × 10−4 bar to 0.66 at 100 bar. Moreover, the direct H-abstraction product P16 C2H6 + 3O2 on the triplet PES is the secondary feasible product with a yield of 0.04 at the collisional limit of 293 K. The present results will be useful to gain deeper insight into the understanding of the kinetics of the C2H5 + HO2 reaction under atmospheric and practical combustion conditions.http://www.mdpi.com/1420-3049/23/8/1919C2H5HO2mechanismkinetics
collection DOAJ
language English
format Article
sources DOAJ
author Nan-Nan Wu
Ming-Zhe Zhang
Shun-Li Ou-Yang
Liang Li
spellingShingle Nan-Nan Wu
Ming-Zhe Zhang
Shun-Li Ou-Yang
Liang Li
Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and Kinetics
Molecules
C2H5
HO2
mechanism
kinetics
author_facet Nan-Nan Wu
Ming-Zhe Zhang
Shun-Li Ou-Yang
Liang Li
author_sort Nan-Nan Wu
title Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and Kinetics
title_short Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and Kinetics
title_full Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and Kinetics
title_fullStr Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and Kinetics
title_full_unstemmed Theoretical Study of the C2H5 + HO2 Reaction: Mechanism and Kinetics
title_sort theoretical study of the c2h5 + ho2 reaction: mechanism and kinetics
publisher MDPI AG
series Molecules
issn 1420-3049
publishDate 2018-08-01
description The mechanism and kinetics for the reaction of the HO2 radical with the ethyl (C2H5) radical have been investigated theoretically. The electronic structure information of the potential energy surface (PES) is obtained at the MP2/6-311++G(d,p) level of theory, and the single-point energies are refined by the CCSD(T)/6-311+G(3df,2p) level of theory. The kinetics of the reaction with multiple channels have been studied by applying variational transition-state theory (VTST) and Rice–Ramsperger–Kassel–Marcus (RRKM) theory over wide temperature and pressure ranges (T = 220–3000 K; P = 1 × 10−4–100 bar). The calculated results show that the HO2 radical can attack C2H5 via a barrierless addition mechanism to form the energy-rich intermediate IM1 C2H5OOH (68.7 kcal/mol) on the singlet PES. The collisional stabilization intermediate IM1 is the predominant product of the reaction at high pressures and low temperatures, while the bimolecular product P1 C2H5O + OH becomes the primary product at lower pressures or higher temperatures. At the experimentally measured temperature 293 K and in the whole pressure range, the reaction yields P1 as major product, which is in good agreement with experiment results, and the branching ratios are predicted to change from 0.96 at 1 × 10−4 bar to 0.66 at 100 bar. Moreover, the direct H-abstraction product P16 C2H6 + 3O2 on the triplet PES is the secondary feasible product with a yield of 0.04 at the collisional limit of 293 K. The present results will be useful to gain deeper insight into the understanding of the kinetics of the C2H5 + HO2 reaction under atmospheric and practical combustion conditions.
topic C2H5
HO2
mechanism
kinetics
url http://www.mdpi.com/1420-3049/23/8/1919
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AT mingzhezhang theoreticalstudyofthec2h5ho2reactionmechanismandkinetics
AT shunliouyang theoreticalstudyofthec2h5ho2reactionmechanismandkinetics
AT liangli theoreticalstudyofthec2h5ho2reactionmechanismandkinetics
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