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Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO)

[Image: see text] The detailed reaction mechanism and kinetics of the C(3)H(3) + CH(2)OO system have been thoroughly investigated. The CBS-QB3 method in conjunction with the ME/vRRKM theory has been applied to figure out the potential energy surface and rate constants for the C(3)H(3) + CH(2)OO syst...

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Autores principales: Pham, Tien V., Trang, Hoang T. T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10193399/
https://www.ncbi.nlm.nih.gov/pubmed/37214685
http://dx.doi.org/10.1021/acsomega.3c00491
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author Pham, Tien V.
Trang, Hoang T. T.
author_facet Pham, Tien V.
Trang, Hoang T. T.
author_sort Pham, Tien V.
collection PubMed
description [Image: see text] The detailed reaction mechanism and kinetics of the C(3)H(3) + CH(2)OO system have been thoroughly investigated. The CBS-QB3 method in conjunction with the ME/vRRKM theory has been applied to figure out the potential energy surface and rate constants for the C(3)H(3) + CH(2)OO system. The C(3)H(3) + CH(2)OO reaction leading to the CH(2)-[cyc-CCHCHOO] + H product dominates compared to the others. Rate constants of the reaction are dependent on temperatures (300–2000 K) and pressures (1–76,000 Torr), for which the rate constant of the channel C(3)H(3) + CH(2)OO → CH(2)-[cyc-CCHCHOO] + H decreases at low pressures (1–76 Torr), but it increases with rising temperature if the pressure P ≥ 760 Torr. Rate constants of the three reaction channels C(3)H(3) + CH(2)OO → CHCCH(2)CHO + OH, C(3)H(3) + CH(2)OO → OCHCHCHCHO + H, and C(3)H(3) + CH(2)OO → CHCHCHO + CH(2)O fluctuate with temperatures. The branching ratio of the C(3)H(3) + CH(2)OO → CH(2)-[cyc-CCHCHOO] + H channel is the highest, accounting for 51–98.7% in the temperature range of 300–2000 K and 760 Torr pressure, while those of the channels forming the products PR10 (OCHCHCHCHO + H) and PR11 (CHCHCHO + CH(2)O) are the lowest, less than 0.1%, indicating that the contribution of these two reaction paths to the title reaction is insignificant. The proposed temperature- and pressure-dependent rate constants, together with the thermodynamic data of the species involved, can be confidently used for modeling CH(2)OO-related systems under atmospheric and combustion conditions.
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spelling pubmed-101933992023-05-19 Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO) Pham, Tien V. Trang, Hoang T. T. ACS Omega [Image: see text] The detailed reaction mechanism and kinetics of the C(3)H(3) + CH(2)OO system have been thoroughly investigated. The CBS-QB3 method in conjunction with the ME/vRRKM theory has been applied to figure out the potential energy surface and rate constants for the C(3)H(3) + CH(2)OO system. The C(3)H(3) + CH(2)OO reaction leading to the CH(2)-[cyc-CCHCHOO] + H product dominates compared to the others. Rate constants of the reaction are dependent on temperatures (300–2000 K) and pressures (1–76,000 Torr), for which the rate constant of the channel C(3)H(3) + CH(2)OO → CH(2)-[cyc-CCHCHOO] + H decreases at low pressures (1–76 Torr), but it increases with rising temperature if the pressure P ≥ 760 Torr. Rate constants of the three reaction channels C(3)H(3) + CH(2)OO → CHCCH(2)CHO + OH, C(3)H(3) + CH(2)OO → OCHCHCHCHO + H, and C(3)H(3) + CH(2)OO → CHCHCHO + CH(2)O fluctuate with temperatures. The branching ratio of the C(3)H(3) + CH(2)OO → CH(2)-[cyc-CCHCHOO] + H channel is the highest, accounting for 51–98.7% in the temperature range of 300–2000 K and 760 Torr pressure, while those of the channels forming the products PR10 (OCHCHCHCHO + H) and PR11 (CHCHCHO + CH(2)O) are the lowest, less than 0.1%, indicating that the contribution of these two reaction paths to the title reaction is insignificant. The proposed temperature- and pressure-dependent rate constants, together with the thermodynamic data of the species involved, can be confidently used for modeling CH(2)OO-related systems under atmospheric and combustion conditions. American Chemical Society 2023-05-03 /pmc/articles/PMC10193399/ /pubmed/37214685 http://dx.doi.org/10.1021/acsomega.3c00491 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Pham, Tien V.
Trang, Hoang T. T.
Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO)
title Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO)
title_full Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO)
title_fullStr Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO)
title_full_unstemmed Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO)
title_short Mechanistic and Kinetic Approach on the Propargyl Radical (C(3)H(3)) with the Criegee Intermediate (CH(2)OO)
title_sort mechanistic and kinetic approach on the propargyl radical (c(3)h(3)) with the criegee intermediate (ch(2)oo)
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10193399/
https://www.ncbi.nlm.nih.gov/pubmed/37214685
http://dx.doi.org/10.1021/acsomega.3c00491
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