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State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System

[Image: see text] The atmospheric reaction of H(2)S with Cl has been reinvestigated to check if, as previously suggested, only explicit dynamical computations can lead to an accurate evaluation of the reaction rate because of strong recrossing effects and the breakdown of the variational extension o...

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Autores principales: Lupi, Jacopo, Puzzarini, Cristina, Cavallotti, Carlo, Barone, Vincenzo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8009477/
https://www.ncbi.nlm.nih.gov/pubmed/32603107
http://dx.doi.org/10.1021/acs.jctc.0c00354
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author Lupi, Jacopo
Puzzarini, Cristina
Cavallotti, Carlo
Barone, Vincenzo
author_facet Lupi, Jacopo
Puzzarini, Cristina
Cavallotti, Carlo
Barone, Vincenzo
author_sort Lupi, Jacopo
collection PubMed
description [Image: see text] The atmospheric reaction of H(2)S with Cl has been reinvestigated to check if, as previously suggested, only explicit dynamical computations can lead to an accurate evaluation of the reaction rate because of strong recrossing effects and the breakdown of the variational extension of transition state theory. For this reason, the corresponding potential energy surface has been thoroughly investigated, thus leading to an accurate characterization of all stationary points, whose energetics has been computed at the state of the art. To this end, coupled-cluster theory including up to quadruple excitations has been employed, together with the extrapolation to the complete basis set limit and also incorporating core–valence correlation, spin–orbit, and scalar relativistic effects as well as diagonal Born–Oppenheimer corrections. This highly accurate composite scheme has also been paralleled by less expensive yet promising computational approaches. Moving to kinetics, variational transition state theory and its variable reaction coordinate extension for barrierless steps have been exploited, thus obtaining a reaction rate constant (8.16 × 10(–11) cm(3) molecule(–1) s(–1) at 300 K and 1 atm) in remarkable agreement with the experimental counterpart. Therefore, contrary to previous claims, there is no need to invoke any failure of the transition state theory, provided that sufficiently accurate quantum-chemical computations are performed. The investigation of the puzzling case of the H(2)S + Cl system allowed us to present a robust approach for disclosing the thermochemistry and kinetics of reactions of atmospheric and astrophysical interest.
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spelling pubmed-80094772021-03-31 State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System Lupi, Jacopo Puzzarini, Cristina Cavallotti, Carlo Barone, Vincenzo J Chem Theory Comput [Image: see text] The atmospheric reaction of H(2)S with Cl has been reinvestigated to check if, as previously suggested, only explicit dynamical computations can lead to an accurate evaluation of the reaction rate because of strong recrossing effects and the breakdown of the variational extension of transition state theory. For this reason, the corresponding potential energy surface has been thoroughly investigated, thus leading to an accurate characterization of all stationary points, whose energetics has been computed at the state of the art. To this end, coupled-cluster theory including up to quadruple excitations has been employed, together with the extrapolation to the complete basis set limit and also incorporating core–valence correlation, spin–orbit, and scalar relativistic effects as well as diagonal Born–Oppenheimer corrections. This highly accurate composite scheme has also been paralleled by less expensive yet promising computational approaches. Moving to kinetics, variational transition state theory and its variable reaction coordinate extension for barrierless steps have been exploited, thus obtaining a reaction rate constant (8.16 × 10(–11) cm(3) molecule(–1) s(–1) at 300 K and 1 atm) in remarkable agreement with the experimental counterpart. Therefore, contrary to previous claims, there is no need to invoke any failure of the transition state theory, provided that sufficiently accurate quantum-chemical computations are performed. The investigation of the puzzling case of the H(2)S + Cl system allowed us to present a robust approach for disclosing the thermochemistry and kinetics of reactions of atmospheric and astrophysical interest. American Chemical Society 2020-06-30 2020-08-11 /pmc/articles/PMC8009477/ /pubmed/32603107 http://dx.doi.org/10.1021/acs.jctc.0c00354 Text en Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Lupi, Jacopo
Puzzarini, Cristina
Cavallotti, Carlo
Barone, Vincenzo
State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System
title State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System
title_full State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System
title_fullStr State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System
title_full_unstemmed State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System
title_short State-of-the-Art Quantum Chemistry Meets Variable Reaction Coordinate Transition State Theory to Solve the Puzzling Case of the H(2)S + Cl System
title_sort state-of-the-art quantum chemistry meets variable reaction coordinate transition state theory to solve the puzzling case of the h(2)s + cl system
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8009477/
https://www.ncbi.nlm.nih.gov/pubmed/32603107
http://dx.doi.org/10.1021/acs.jctc.0c00354
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