Cargando…
A Systematic Theoretical Kinetics Analysis for the Waddington Mechanism in the Low-Temperature Oxidation of Butene and Butanol Isomers
[Image: see text] The Waddington mechanism, or the Waddington-type reaction pathway, is crucial for low-temperature oxidation of both alkenes and alcohols. In this study, the Waddington mechanism in the oxidation chemistry of butene and butanol isomers was systematically investigated. Fundamental qu...
Autores principales: | , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical
Society
2020
|
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7467721/ https://www.ncbi.nlm.nih.gov/pubmed/32574048 http://dx.doi.org/10.1021/acs.jpca.0c03515 |
_version_ | 1783578074320732160 |
---|---|
author | Li, Yang Zhao, Qian Zhang, Yingjia Huang, Zuohua Sarathy, S. Mani |
author_facet | Li, Yang Zhao, Qian Zhang, Yingjia Huang, Zuohua Sarathy, S. Mani |
author_sort | Li, Yang |
collection | PubMed |
description | [Image: see text] The Waddington mechanism, or the Waddington-type reaction pathway, is crucial for low-temperature oxidation of both alkenes and alcohols. In this study, the Waddington mechanism in the oxidation chemistry of butene and butanol isomers was systematically investigated. Fundamental quantum chemical calculations were conducted for the rate constants and thermodynamic properties of the reactions and species in this mechanism. Calculations were performed using two different ab initio solvers: Gaussian 09 and Orca 4.0.0, and two different kinetic solvers: PAPR and MultiWell, comprehensively. Temperature- and pressure-dependent rate constants were performed based on the transition state theory, associated with the Rice Ramsperger Kassel Marcus and master equation theories. Temperature-dependent thermochemistry (enthalpies of formation, entropy, and heat capacity) of all major species was also conducted, based on the statistical thermodynamics. Of the two types of reaction, dissociation reactions were significantly faster than isomerization reactions, while the rate constants of both reactions converged toward higher temperatures. In comparison, between two ab initio solvers, the barrier height difference among all isomerization and dissociation reactions was about 2 and 0.5 kcal/mol, respectively, resulting in less than 50%, and a factor of 2–10 differences for the predicted rate coefficients of the two reaction types, respectively. Comparing the two kinetic solvers, the rate constants of the isomerization reactions showed less than a 32% difference, while the rate of one dissociation reaction (P1 ↔ WDT12) exhibited 1–2 orders of magnitude discrepancy. Compared with results from the literature, both reaction rate coefficients (R4 and R5 reaction systems) and species’ thermochemistry (all closed shell molecules and open shell radicals R4 and R5) showed good agreement with the corresponding values obtained from the literature. All calculated results can be directly used for the chemical kinetic model development of butene and butanol isomer oxidation. |
format | Online Article Text |
id | pubmed-7467721 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | American Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-74677212020-09-03 A Systematic Theoretical Kinetics Analysis for the Waddington Mechanism in the Low-Temperature Oxidation of Butene and Butanol Isomers Li, Yang Zhao, Qian Zhang, Yingjia Huang, Zuohua Sarathy, S. Mani J Phys Chem A [Image: see text] The Waddington mechanism, or the Waddington-type reaction pathway, is crucial for low-temperature oxidation of both alkenes and alcohols. In this study, the Waddington mechanism in the oxidation chemistry of butene and butanol isomers was systematically investigated. Fundamental quantum chemical calculations were conducted for the rate constants and thermodynamic properties of the reactions and species in this mechanism. Calculations were performed using two different ab initio solvers: Gaussian 09 and Orca 4.0.0, and two different kinetic solvers: PAPR and MultiWell, comprehensively. Temperature- and pressure-dependent rate constants were performed based on the transition state theory, associated with the Rice Ramsperger Kassel Marcus and master equation theories. Temperature-dependent thermochemistry (enthalpies of formation, entropy, and heat capacity) of all major species was also conducted, based on the statistical thermodynamics. Of the two types of reaction, dissociation reactions were significantly faster than isomerization reactions, while the rate constants of both reactions converged toward higher temperatures. In comparison, between two ab initio solvers, the barrier height difference among all isomerization and dissociation reactions was about 2 and 0.5 kcal/mol, respectively, resulting in less than 50%, and a factor of 2–10 differences for the predicted rate coefficients of the two reaction types, respectively. Comparing the two kinetic solvers, the rate constants of the isomerization reactions showed less than a 32% difference, while the rate of one dissociation reaction (P1 ↔ WDT12) exhibited 1–2 orders of magnitude discrepancy. Compared with results from the literature, both reaction rate coefficients (R4 and R5 reaction systems) and species’ thermochemistry (all closed shell molecules and open shell radicals R4 and R5) showed good agreement with the corresponding values obtained from the literature. All calculated results can be directly used for the chemical kinetic model development of butene and butanol isomer oxidation. American Chemical Society 2020-06-23 2020-07-09 /pmc/articles/PMC7467721/ /pubmed/32574048 http://dx.doi.org/10.1021/acs.jpca.0c03515 Text en Copyright © 2020 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 | Li, Yang Zhao, Qian Zhang, Yingjia Huang, Zuohua Sarathy, S. Mani A Systematic Theoretical Kinetics Analysis for the Waddington Mechanism in the Low-Temperature Oxidation of Butene and Butanol Isomers |
title | A Systematic Theoretical Kinetics Analysis for the
Waddington Mechanism in the Low-Temperature Oxidation of Butene and
Butanol Isomers |
title_full | A Systematic Theoretical Kinetics Analysis for the
Waddington Mechanism in the Low-Temperature Oxidation of Butene and
Butanol Isomers |
title_fullStr | A Systematic Theoretical Kinetics Analysis for the
Waddington Mechanism in the Low-Temperature Oxidation of Butene and
Butanol Isomers |
title_full_unstemmed | A Systematic Theoretical Kinetics Analysis for the
Waddington Mechanism in the Low-Temperature Oxidation of Butene and
Butanol Isomers |
title_short | A Systematic Theoretical Kinetics Analysis for the
Waddington Mechanism in the Low-Temperature Oxidation of Butene and
Butanol Isomers |
title_sort | systematic theoretical kinetics analysis for the
waddington mechanism in the low-temperature oxidation of butene and
butanol isomers |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7467721/ https://www.ncbi.nlm.nih.gov/pubmed/32574048 http://dx.doi.org/10.1021/acs.jpca.0c03515 |
work_keys_str_mv | AT liyang asystematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT zhaoqian asystematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT zhangyingjia asystematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT huangzuohua asystematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT sarathysmani asystematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT liyang systematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT zhaoqian systematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT zhangyingjia systematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT huangzuohua systematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers AT sarathysmani systematictheoreticalkineticsanalysisforthewaddingtonmechanisminthelowtemperatureoxidationofbuteneandbutanolisomers |