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Unravelling the mechanisms of vibrational relaxation in solution

We present a systematic study of the mode-specific vibrational relaxation of NO(2) in six weakly-interacting solvents (perfluorohexane, perfluoromethylcyclohexane, perfluorodecalin, carbon tetrachloride, chloroform, and d-chloroform), chosen to elucidate the dominant energy transfer mechanisms in th...

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Autores principales: Grubb, Michael P., Coulter, Philip M., Marroux, Hugo J. B., Orr-Ewing, Andrew J., Ashfold, Michael N. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5380915/
https://www.ncbi.nlm.nih.gov/pubmed/28451375
http://dx.doi.org/10.1039/c6sc05234g
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author Grubb, Michael P.
Coulter, Philip M.
Marroux, Hugo J. B.
Orr-Ewing, Andrew J.
Ashfold, Michael N. R.
author_facet Grubb, Michael P.
Coulter, Philip M.
Marroux, Hugo J. B.
Orr-Ewing, Andrew J.
Ashfold, Michael N. R.
author_sort Grubb, Michael P.
collection PubMed
description We present a systematic study of the mode-specific vibrational relaxation of NO(2) in six weakly-interacting solvents (perfluorohexane, perfluoromethylcyclohexane, perfluorodecalin, carbon tetrachloride, chloroform, and d-chloroform), chosen to elucidate the dominant energy transfer mechanisms in the solution phase. Broadband transient vibrational absorption spectroscopy has allowed us to extract quantum state-resolved relaxation dynamics of the two distinct NO(2) fragments produced from the 340 nm photolysis of N(2)O(4) → NO(2)(X) + NO(2)(A) and their separate paths to thermal equilibrium. Distinct relaxation pathways are observed for the NO(2) bending and stretching modes, even at energies as high as 7000 cm(–1) above the potential minimum. Vibrational energy transfer is governed by different interaction mechanisms in the various solvent environments, and proceeds with timescales ranging from 20–1100 ps. NO(2) relaxation rates in the perfluorocarbon solvents are identical despite differences in acceptor mode state densities, infrared absorption cross sections, and local solvent structure. Vibrational energy is shown to be transferred to non-vibrational solvent degrees of freedom (V-T) through impulsive collisions with the perfluorocarbon molecules. Conversely, NO(2) relaxation in chlorinated solvents is reliant on vibrational resonances (V-V) while V-T energy transfer is inefficient and thermal excitation of the surrounding solvent molecules inhibits faster vibrational relaxation through direct complexation. Intramolecular vibrational redistribution allows the symmetric stretch of NO(2) to act as a gateway for antisymmetric stretch energy to exit the molecule. This study establishes an unprecedented level of detail for the cooling dynamics of a solvated small molecule, and provides a benchmark system for future theoretical studies of vibrational relaxation processes in solution.
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spelling pubmed-53809152017-04-27 Unravelling the mechanisms of vibrational relaxation in solution Grubb, Michael P. Coulter, Philip M. Marroux, Hugo J. B. Orr-Ewing, Andrew J. Ashfold, Michael N. R. Chem Sci Chemistry We present a systematic study of the mode-specific vibrational relaxation of NO(2) in six weakly-interacting solvents (perfluorohexane, perfluoromethylcyclohexane, perfluorodecalin, carbon tetrachloride, chloroform, and d-chloroform), chosen to elucidate the dominant energy transfer mechanisms in the solution phase. Broadband transient vibrational absorption spectroscopy has allowed us to extract quantum state-resolved relaxation dynamics of the two distinct NO(2) fragments produced from the 340 nm photolysis of N(2)O(4) → NO(2)(X) + NO(2)(A) and their separate paths to thermal equilibrium. Distinct relaxation pathways are observed for the NO(2) bending and stretching modes, even at energies as high as 7000 cm(–1) above the potential minimum. Vibrational energy transfer is governed by different interaction mechanisms in the various solvent environments, and proceeds with timescales ranging from 20–1100 ps. NO(2) relaxation rates in the perfluorocarbon solvents are identical despite differences in acceptor mode state densities, infrared absorption cross sections, and local solvent structure. Vibrational energy is shown to be transferred to non-vibrational solvent degrees of freedom (V-T) through impulsive collisions with the perfluorocarbon molecules. Conversely, NO(2) relaxation in chlorinated solvents is reliant on vibrational resonances (V-V) while V-T energy transfer is inefficient and thermal excitation of the surrounding solvent molecules inhibits faster vibrational relaxation through direct complexation. Intramolecular vibrational redistribution allows the symmetric stretch of NO(2) to act as a gateway for antisymmetric stretch energy to exit the molecule. This study establishes an unprecedented level of detail for the cooling dynamics of a solvated small molecule, and provides a benchmark system for future theoretical studies of vibrational relaxation processes in solution. Royal Society of Chemistry 2017-04-01 2017-02-10 /pmc/articles/PMC5380915/ /pubmed/28451375 http://dx.doi.org/10.1039/c6sc05234g Text en This journal is © The Royal Society of Chemistry 2017 http://creativecommons.org/licenses/by/3.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Grubb, Michael P.
Coulter, Philip M.
Marroux, Hugo J. B.
Orr-Ewing, Andrew J.
Ashfold, Michael N. R.
Unravelling the mechanisms of vibrational relaxation in solution
title Unravelling the mechanisms of vibrational relaxation in solution
title_full Unravelling the mechanisms of vibrational relaxation in solution
title_fullStr Unravelling the mechanisms of vibrational relaxation in solution
title_full_unstemmed Unravelling the mechanisms of vibrational relaxation in solution
title_short Unravelling the mechanisms of vibrational relaxation in solution
title_sort unravelling the mechanisms of vibrational relaxation in solution
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5380915/
https://www.ncbi.nlm.nih.gov/pubmed/28451375
http://dx.doi.org/10.1039/c6sc05234g
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