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Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer

Biphasic interfacial electron transfer (IET) reactions at polarisable liquid|liquid (L|L) interfaces underpin new approaches to electrosynthesis, redox electrocatalysis, bioelectrochemistry and artificial photosynthesis. Herein, using cyclic and alternating current voltammetry, we demonstrate that u...

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Autores principales: Gamero‐Quijano, Alonso, Manzanares, José A., Ghazvini, Seyed M. B. H., Low, Paul J., Scanlon, Micheál D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10108062/
https://www.ncbi.nlm.nih.gov/pubmed/37082100
http://dx.doi.org/10.1002/celc.202201042
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author Gamero‐Quijano, Alonso
Manzanares, José A.
Ghazvini, Seyed M. B. H.
Low, Paul J.
Scanlon, Micheál D.
author_facet Gamero‐Quijano, Alonso
Manzanares, José A.
Ghazvini, Seyed M. B. H.
Low, Paul J.
Scanlon, Micheál D.
author_sort Gamero‐Quijano, Alonso
collection PubMed
description Biphasic interfacial electron transfer (IET) reactions at polarisable liquid|liquid (L|L) interfaces underpin new approaches to electrosynthesis, redox electrocatalysis, bioelectrochemistry and artificial photosynthesis. Herein, using cyclic and alternating current voltammetry, we demonstrate that under certain experimental conditions, the biphasic 2‐electron O(2) reduction reaction can proceed by single‐step IET between a reductant in the organic phase, decamethylferrocene, and interfacial protons in the presence of O(2). Using this biphasic system, we demonstrate that the applied interfacial Galvani potential difference [Formula: see text] provides no direct driving force to realise a thermodynamically uphill biphasic IET reaction in the mixed solvent region. We show that the onset potential for a biphasic single‐step IET reaction does not correlate with the thermodynamically predicted standard Galvani IET potential and is instead closely correlated with the potential of zero charge at a polarised L|L interface. We outline that the applied [Formula: see text] required to modulate the interfacial ion distributions, and thus kinetics of IET, must be optimised to ensure that the aqueous and organic redox species are present in substantial concentrations at the L|L interface simultaneously in order to react.
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spelling pubmed-101080622023-04-18 Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer Gamero‐Quijano, Alonso Manzanares, José A. Ghazvini, Seyed M. B. H. Low, Paul J. Scanlon, Micheál D. ChemElectroChem Research Articles Biphasic interfacial electron transfer (IET) reactions at polarisable liquid|liquid (L|L) interfaces underpin new approaches to electrosynthesis, redox electrocatalysis, bioelectrochemistry and artificial photosynthesis. Herein, using cyclic and alternating current voltammetry, we demonstrate that under certain experimental conditions, the biphasic 2‐electron O(2) reduction reaction can proceed by single‐step IET between a reductant in the organic phase, decamethylferrocene, and interfacial protons in the presence of O(2). Using this biphasic system, we demonstrate that the applied interfacial Galvani potential difference [Formula: see text] provides no direct driving force to realise a thermodynamically uphill biphasic IET reaction in the mixed solvent region. We show that the onset potential for a biphasic single‐step IET reaction does not correlate with the thermodynamically predicted standard Galvani IET potential and is instead closely correlated with the potential of zero charge at a polarised L|L interface. We outline that the applied [Formula: see text] required to modulate the interfacial ion distributions, and thus kinetics of IET, must be optimised to ensure that the aqueous and organic redox species are present in substantial concentrations at the L|L interface simultaneously in order to react. John Wiley and Sons Inc. 2022-12-27 2023-02-01 /pmc/articles/PMC10108062/ /pubmed/37082100 http://dx.doi.org/10.1002/celc.202201042 Text en © 2022 The Authors. ChemElectroChem published by Wiley-VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Gamero‐Quijano, Alonso
Manzanares, José A.
Ghazvini, Seyed M. B. H.
Low, Paul J.
Scanlon, Micheál D.
Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer
title Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer
title_full Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer
title_fullStr Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer
title_full_unstemmed Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer
title_short Potential‐Modulated Ion Distributions in the Back‐to‐Back Electrical Double Layers at a Polarised Liquid|Liquid Interface Regulate the Kinetics of Interfacial Electron Transfer
title_sort potential‐modulated ion distributions in the back‐to‐back electrical double layers at a polarised liquid|liquid interface regulate the kinetics of interfacial electron transfer
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10108062/
https://www.ncbi.nlm.nih.gov/pubmed/37082100
http://dx.doi.org/10.1002/celc.202201042
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