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Excited-state proton-coupled electron transfer within ion pairs
The use of light to drive proton-coupled electron transfer (PCET) reactions has received growing interest, with recent focus on the direct use of excited states in PCET reactions (ES-PCET). Electrostatic ion pairs provide a scaffold to reduce reaction orders and have facilitated many discoveries in...
Autores principales: | , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
The Royal Society of Chemistry
2020
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152629/ https://www.ncbi.nlm.nih.gov/pubmed/34109019 http://dx.doi.org/10.1039/c9sc04941j |
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author | Swords, Wesley B. Meyer, Gerald J. Hammarström, Leif |
author_facet | Swords, Wesley B. Meyer, Gerald J. Hammarström, Leif |
author_sort | Swords, Wesley B. |
collection | PubMed |
description | The use of light to drive proton-coupled electron transfer (PCET) reactions has received growing interest, with recent focus on the direct use of excited states in PCET reactions (ES-PCET). Electrostatic ion pairs provide a scaffold to reduce reaction orders and have facilitated many discoveries in electron-transfer chemistry. Their use, however, has not translated to PCET. Herein, we show that ion pairs, formed solely through electrostatic interactions, provide a general, facile means to study an ES-PCET mechanism. These ion pairs formed readily between salicylate anions and tetracationic ruthenium complexes in acetonitrile solution. Upon light excitation, quenching of the ruthenium excited state occurred through ES-PCET oxidation of salicylate within the ion pair. Transient absorption spectroscopy identified the reduced ruthenium complex and oxidized salicylate radical as the primary photoproducts of this reaction. The reduced reaction order due to ion pairing allowed the first-order PCET rate constants to be directly measured through nanosecond photoluminescence spectroscopy. These PCET rate constants saturated at larger driving forces consistent with approaching the Marcus barrierless region. Surprisingly, a proton-transfer tautomer of salicylate, with the proton localized on the carboxylate functional group, was present in acetonitrile. A pre-equilibrium model based on this tautomerization provided non-adiabatic electron-transfer rate constants that were well described by Marcus theory. Electrostatic ion pairs were critical to our ability to investigate this PCET mechanism without the need to covalently link the donor and acceptor or introduce specific hydrogen bonding sites that could compete in alternate PCET pathways. |
format | Online Article Text |
id | pubmed-8152629 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-81526292021-06-08 Excited-state proton-coupled electron transfer within ion pairs Swords, Wesley B. Meyer, Gerald J. Hammarström, Leif Chem Sci Chemistry The use of light to drive proton-coupled electron transfer (PCET) reactions has received growing interest, with recent focus on the direct use of excited states in PCET reactions (ES-PCET). Electrostatic ion pairs provide a scaffold to reduce reaction orders and have facilitated many discoveries in electron-transfer chemistry. Their use, however, has not translated to PCET. Herein, we show that ion pairs, formed solely through electrostatic interactions, provide a general, facile means to study an ES-PCET mechanism. These ion pairs formed readily between salicylate anions and tetracationic ruthenium complexes in acetonitrile solution. Upon light excitation, quenching of the ruthenium excited state occurred through ES-PCET oxidation of salicylate within the ion pair. Transient absorption spectroscopy identified the reduced ruthenium complex and oxidized salicylate radical as the primary photoproducts of this reaction. The reduced reaction order due to ion pairing allowed the first-order PCET rate constants to be directly measured through nanosecond photoluminescence spectroscopy. These PCET rate constants saturated at larger driving forces consistent with approaching the Marcus barrierless region. Surprisingly, a proton-transfer tautomer of salicylate, with the proton localized on the carboxylate functional group, was present in acetonitrile. A pre-equilibrium model based on this tautomerization provided non-adiabatic electron-transfer rate constants that were well described by Marcus theory. Electrostatic ion pairs were critical to our ability to investigate this PCET mechanism without the need to covalently link the donor and acceptor or introduce specific hydrogen bonding sites that could compete in alternate PCET pathways. The Royal Society of Chemistry 2020-03-03 /pmc/articles/PMC8152629/ /pubmed/34109019 http://dx.doi.org/10.1039/c9sc04941j Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/ |
spellingShingle | Chemistry Swords, Wesley B. Meyer, Gerald J. Hammarström, Leif Excited-state proton-coupled electron transfer within ion pairs |
title | Excited-state proton-coupled electron transfer within ion pairs |
title_full | Excited-state proton-coupled electron transfer within ion pairs |
title_fullStr | Excited-state proton-coupled electron transfer within ion pairs |
title_full_unstemmed | Excited-state proton-coupled electron transfer within ion pairs |
title_short | Excited-state proton-coupled electron transfer within ion pairs |
title_sort | excited-state proton-coupled electron transfer within ion pairs |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8152629/ https://www.ncbi.nlm.nih.gov/pubmed/34109019 http://dx.doi.org/10.1039/c9sc04941j |
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