Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric condition

Abstract The rate coefficients for OH + CH3OH and OH + CH3OH (+ X) (X = NH3, H2O) reactions were calculated using microcanonical, and canonical variational transition state theory (CVT) between 200 and 400 K based on potential energy surface constructed using CCSD(T)//M06-2X/6-311++G(3df,3pd). The r...

Full description

Bibliographic Details
Main Authors: Mohamad Akbar Ali, M. Balaganesh, Faisal A. Al-Odail, K. C. Lin
Format: Article
Language:English
Published: Nature Publishing Group 2021-06-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-90640-6
id doaj-04207e106238429098750d6171da1112
record_format Article
spelling doaj-04207e106238429098750d6171da11122021-06-13T11:39:42ZengNature Publishing GroupScientific Reports2045-23222021-06-0111111610.1038/s41598-021-90640-6Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric conditionMohamad Akbar Ali0M. Balaganesh1Faisal A. Al-Odail2K. C. Lin3Department of Chemistry, College of Science, King Faisal UniversityDepartment of Chemistry, National Taiwan UniversityDepartment of Chemistry, College of Science, King Faisal UniversityDepartment of Chemistry, National Taiwan UniversityAbstract The rate coefficients for OH + CH3OH and OH + CH3OH (+ X) (X = NH3, H2O) reactions were calculated using microcanonical, and canonical variational transition state theory (CVT) between 200 and 400 K based on potential energy surface constructed using CCSD(T)//M06-2X/6-311++G(3df,3pd). The results show that OH + CH3OH is dominated by the hydrogen atoms abstraction from CH3 position in both free and ammonia/water catalyzed ones. This result is in consistent with previous experimental and theoretical studies. The calculated rate coefficient for the OH + CH3OH (8.8 × 10−13 cm3 molecule−1 s−1), for OH + CH3OH (+ NH3) [1.9 × 10−21 cm3 molecule−1 s−1] and for OH + CH3OH (+ H2O) [8.1 × 10−16 cm3 molecule−1 s−1] at 300 K. The rate coefficient is at least 8 order magnitude [for OH + CH3OH(+ NH3) reaction] and 3 orders magnitude [OH + CH3OH (+ H2O)] are smaller than free OH + CH3OH reaction. Our calculations predict that the catalytic effect of single ammonia and water molecule on OH + CH3OH reaction has no effect under tropospheric conditions because the dominated ammonia and water-assisted reaction depends on ammonia and water concentration, respectively. As a result, the total effective reaction rate coefficients are smaller. The current study provides a comprehensive example of how basic and neutral catalysts effect the most important atmospheric prototype alcohol reactions.https://doi.org/10.1038/s41598-021-90640-6
collection DOAJ
language English
format Article
sources DOAJ
author Mohamad Akbar Ali
M. Balaganesh
Faisal A. Al-Odail
K. C. Lin
spellingShingle Mohamad Akbar Ali
M. Balaganesh
Faisal A. Al-Odail
K. C. Lin
Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric condition
Scientific Reports
author_facet Mohamad Akbar Ali
M. Balaganesh
Faisal A. Al-Odail
K. C. Lin
author_sort Mohamad Akbar Ali
title Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric condition
title_short Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric condition
title_full Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric condition
title_fullStr Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric condition
title_full_unstemmed Effect of ammonia and water molecule on OH + CH3OH reaction under tropospheric condition
title_sort effect of ammonia and water molecule on oh + ch3oh reaction under tropospheric condition
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-06-01
description Abstract The rate coefficients for OH + CH3OH and OH + CH3OH (+ X) (X = NH3, H2O) reactions were calculated using microcanonical, and canonical variational transition state theory (CVT) between 200 and 400 K based on potential energy surface constructed using CCSD(T)//M06-2X/6-311++G(3df,3pd). The results show that OH + CH3OH is dominated by the hydrogen atoms abstraction from CH3 position in both free and ammonia/water catalyzed ones. This result is in consistent with previous experimental and theoretical studies. The calculated rate coefficient for the OH + CH3OH (8.8 × 10−13 cm3 molecule−1 s−1), for OH + CH3OH (+ NH3) [1.9 × 10−21 cm3 molecule−1 s−1] and for OH + CH3OH (+ H2O) [8.1 × 10−16 cm3 molecule−1 s−1] at 300 K. The rate coefficient is at least 8 order magnitude [for OH + CH3OH(+ NH3) reaction] and 3 orders magnitude [OH + CH3OH (+ H2O)] are smaller than free OH + CH3OH reaction. Our calculations predict that the catalytic effect of single ammonia and water molecule on OH + CH3OH reaction has no effect under tropospheric conditions because the dominated ammonia and water-assisted reaction depends on ammonia and water concentration, respectively. As a result, the total effective reaction rate coefficients are smaller. The current study provides a comprehensive example of how basic and neutral catalysts effect the most important atmospheric prototype alcohol reactions.
url https://doi.org/10.1038/s41598-021-90640-6
work_keys_str_mv AT mohamadakbarali effectofammoniaandwatermoleculeonohch3ohreactionundertroposphericcondition
AT mbalaganesh effectofammoniaandwatermoleculeonohch3ohreactionundertroposphericcondition
AT faisalaalodail effectofammoniaandwatermoleculeonohch3ohreactionundertroposphericcondition
AT kclin effectofammoniaandwatermoleculeonohch3ohreactionundertroposphericcondition
_version_ 1721379531112054784