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Deciphering the incognito role of water in a light driven proton coupled electron transfer process

Light induced multisite electron proton transfer in two different phenol (simple and phenol carrying an intramolecularly hydrogen bonded base) pendants on acridinedione dye (ADD) and an NADH analogue was studied by following fluorescence quenching dynamics in an ultrafast timescale. In a simple phen...

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Autores principales: Thiyagarajan, Senthil Kumar, Suresh, Raghupathy, Ramanan, Vadivel, Ramamurthy, Perumal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5873145/
https://www.ncbi.nlm.nih.gov/pubmed/29629158
http://dx.doi.org/10.1039/c7sc03161k
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author Thiyagarajan, Senthil Kumar
Suresh, Raghupathy
Ramanan, Vadivel
Ramamurthy, Perumal
author_facet Thiyagarajan, Senthil Kumar
Suresh, Raghupathy
Ramanan, Vadivel
Ramamurthy, Perumal
author_sort Thiyagarajan, Senthil Kumar
collection PubMed
description Light induced multisite electron proton transfer in two different phenol (simple and phenol carrying an intramolecularly hydrogen bonded base) pendants on acridinedione dye (ADD) and an NADH analogue was studied by following fluorescence quenching dynamics in an ultrafast timescale. In a simple phenol derivative (ADDOH), photo-excited acridinedione acquires an electron from phenol intramolecularly, coupled with the transfer of a proton to solvent water. But in a phenol carrying hydrogen bonded base (ADDDP), both electron and proton transfer occur completely intramolecularly. The sequence of this electron and proton transfer process was validated by discerning the pH dependency of the reaction kinetics. Since photo-excited ADDs are stronger oxidants, the sequential electron first proton transfer mechanism (ETPT) was observed in ADDOH and hence there is no change in the PCET reaction kinetics k(ETPT) ∼ 6.57 × 10(9) s(–1) in the entire pH range (pH 2–12). But the phenol carrying hydrogen bonded base (ADDDP) unleashes concerted electron proton transfer where the PCET reaction rate decreases upon decreasing the pH below its pK(a). Noticeably, the concerted EPT process in ADDDP mimics the donor side of photosystem II and it occurs by two distinct pathways: (i) through direct intramolecular hydrogen bonding between the phenol and amine, k(DEPT) ∼ 12.5 × 10(10) s(–1) and (ii) through the bidirectional hydrogen bond extended by the water molecule trapped in between the proton donor and acceptor, which mediates the proton transfer and serves as a proton wire, k(WMEPT) ∼ 2.85 × 10(10) s(–1). These results unravel the incognito role played by water in mediating the proton transfer process when the structural elements do not favor direct hydrogen bonding between the proton donor and acceptor in a concerted PCET reaction.
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spelling pubmed-58731452018-04-06 Deciphering the incognito role of water in a light driven proton coupled electron transfer process Thiyagarajan, Senthil Kumar Suresh, Raghupathy Ramanan, Vadivel Ramamurthy, Perumal Chem Sci Chemistry Light induced multisite electron proton transfer in two different phenol (simple and phenol carrying an intramolecularly hydrogen bonded base) pendants on acridinedione dye (ADD) and an NADH analogue was studied by following fluorescence quenching dynamics in an ultrafast timescale. In a simple phenol derivative (ADDOH), photo-excited acridinedione acquires an electron from phenol intramolecularly, coupled with the transfer of a proton to solvent water. But in a phenol carrying hydrogen bonded base (ADDDP), both electron and proton transfer occur completely intramolecularly. The sequence of this electron and proton transfer process was validated by discerning the pH dependency of the reaction kinetics. Since photo-excited ADDs are stronger oxidants, the sequential electron first proton transfer mechanism (ETPT) was observed in ADDOH and hence there is no change in the PCET reaction kinetics k(ETPT) ∼ 6.57 × 10(9) s(–1) in the entire pH range (pH 2–12). But the phenol carrying hydrogen bonded base (ADDDP) unleashes concerted electron proton transfer where the PCET reaction rate decreases upon decreasing the pH below its pK(a). Noticeably, the concerted EPT process in ADDDP mimics the donor side of photosystem II and it occurs by two distinct pathways: (i) through direct intramolecular hydrogen bonding between the phenol and amine, k(DEPT) ∼ 12.5 × 10(10) s(–1) and (ii) through the bidirectional hydrogen bond extended by the water molecule trapped in between the proton donor and acceptor, which mediates the proton transfer and serves as a proton wire, k(WMEPT) ∼ 2.85 × 10(10) s(–1). These results unravel the incognito role played by water in mediating the proton transfer process when the structural elements do not favor direct hydrogen bonding between the proton donor and acceptor in a concerted PCET reaction. Royal Society of Chemistry 2017-11-10 /pmc/articles/PMC5873145/ /pubmed/29629158 http://dx.doi.org/10.1039/c7sc03161k Text en This journal is © The Royal Society of Chemistry 2018 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Thiyagarajan, Senthil Kumar
Suresh, Raghupathy
Ramanan, Vadivel
Ramamurthy, Perumal
Deciphering the incognito role of water in a light driven proton coupled electron transfer process
title Deciphering the incognito role of water in a light driven proton coupled electron transfer process
title_full Deciphering the incognito role of water in a light driven proton coupled electron transfer process
title_fullStr Deciphering the incognito role of water in a light driven proton coupled electron transfer process
title_full_unstemmed Deciphering the incognito role of water in a light driven proton coupled electron transfer process
title_short Deciphering the incognito role of water in a light driven proton coupled electron transfer process
title_sort deciphering the incognito role of water in a light driven proton coupled electron transfer process
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5873145/
https://www.ncbi.nlm.nih.gov/pubmed/29629158
http://dx.doi.org/10.1039/c7sc03161k
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