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Oxidation Kinetics and Thermodynamics of Resonance-Stabilized Radicals: The Pent-1-en-3-yl + O(2) Reaction
[Image: see text] The kinetics and thermochemistry of the pent-1-en-3-yl radical reaction with molecular oxygen (CH(2)CHCHCH(2)CH(3) + O(2)) has been studied by both experimental and computational methods. The bimolecular rate coefficient of the reaction was measured as a function of temperature (19...
Autores principales: | , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2019
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7076695/ https://www.ncbi.nlm.nih.gov/pubmed/31446757 http://dx.doi.org/10.1021/acs.jpca.9b03923 |
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author | Döntgen, Malte Pekkanen, Timo T. Joshi, Satya P. Timonen, Raimo S. Eskola, Arkke J. |
author_facet | Döntgen, Malte Pekkanen, Timo T. Joshi, Satya P. Timonen, Raimo S. Eskola, Arkke J. |
author_sort | Döntgen, Malte |
collection | PubMed |
description | [Image: see text] The kinetics and thermochemistry of the pent-1-en-3-yl radical reaction with molecular oxygen (CH(2)CHCHCH(2)CH(3) + O(2)) has been studied by both experimental and computational methods. The bimolecular rate coefficient of the reaction was measured as a function of temperature (198–370 K) and pressure (0.2–4.5 Torr) using laser photolysis–photoionization mass-spectrometry. Quantum chemical calculations were used to explore the potential energy surface of the reaction, after which Rice–Ramsperger–Kassel–Marcus theory/master equation simulations were performed to investigate the reaction. The experimental data were used to adjust key parameters, such as well depths, in the master equation model within methodological uncertainties. The master equation simulations suggest that the formation rates of the two potential RO(2) adducts are equal and that the reaction to QOOH is slower than for saturated hydrocarbons. The initial addition reaction, CH(2)CHCHCH(2)CH(3) + O(2), is found to be barrierless when accounting for multireference effects. This is in agreement with the current experimental data, as well as with past experimental data for the allyl + O(2) reaction. Finally, we conducted numerical simulations of the pent-1-en-3-yl + O(2) reaction system and observed significant amounts of penta-1,3-diene being formed under engine-relevant conditions. |
format | Online Article Text |
id | pubmed-7076695 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-70766952020-03-18 Oxidation Kinetics and Thermodynamics of Resonance-Stabilized Radicals: The Pent-1-en-3-yl + O(2) Reaction Döntgen, Malte Pekkanen, Timo T. Joshi, Satya P. Timonen, Raimo S. Eskola, Arkke J. J Phys Chem A [Image: see text] The kinetics and thermochemistry of the pent-1-en-3-yl radical reaction with molecular oxygen (CH(2)CHCHCH(2)CH(3) + O(2)) has been studied by both experimental and computational methods. The bimolecular rate coefficient of the reaction was measured as a function of temperature (198–370 K) and pressure (0.2–4.5 Torr) using laser photolysis–photoionization mass-spectrometry. Quantum chemical calculations were used to explore the potential energy surface of the reaction, after which Rice–Ramsperger–Kassel–Marcus theory/master equation simulations were performed to investigate the reaction. The experimental data were used to adjust key parameters, such as well depths, in the master equation model within methodological uncertainties. The master equation simulations suggest that the formation rates of the two potential RO(2) adducts are equal and that the reaction to QOOH is slower than for saturated hydrocarbons. The initial addition reaction, CH(2)CHCHCH(2)CH(3) + O(2), is found to be barrierless when accounting for multireference effects. This is in agreement with the current experimental data, as well as with past experimental data for the allyl + O(2) reaction. Finally, we conducted numerical simulations of the pent-1-en-3-yl + O(2) reaction system and observed significant amounts of penta-1,3-diene being formed under engine-relevant conditions. American Chemical Society 2019-08-26 2019-09-19 /pmc/articles/PMC7076695/ /pubmed/31446757 http://dx.doi.org/10.1021/acs.jpca.9b03923 Text en Copyright © 2019 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited. |
spellingShingle | Döntgen, Malte Pekkanen, Timo T. Joshi, Satya P. Timonen, Raimo S. Eskola, Arkke J. Oxidation Kinetics and Thermodynamics of Resonance-Stabilized Radicals: The Pent-1-en-3-yl + O(2) Reaction |
title | Oxidation Kinetics and Thermodynamics of Resonance-Stabilized
Radicals: The Pent-1-en-3-yl + O(2) Reaction |
title_full | Oxidation Kinetics and Thermodynamics of Resonance-Stabilized
Radicals: The Pent-1-en-3-yl + O(2) Reaction |
title_fullStr | Oxidation Kinetics and Thermodynamics of Resonance-Stabilized
Radicals: The Pent-1-en-3-yl + O(2) Reaction |
title_full_unstemmed | Oxidation Kinetics and Thermodynamics of Resonance-Stabilized
Radicals: The Pent-1-en-3-yl + O(2) Reaction |
title_short | Oxidation Kinetics and Thermodynamics of Resonance-Stabilized
Radicals: The Pent-1-en-3-yl + O(2) Reaction |
title_sort | oxidation kinetics and thermodynamics of resonance-stabilized
radicals: the pent-1-en-3-yl + o(2) reaction |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7076695/ https://www.ncbi.nlm.nih.gov/pubmed/31446757 http://dx.doi.org/10.1021/acs.jpca.9b03923 |
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