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Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte

Electrochemical investigations of the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) have been conducted in a Ca(2+)-containing dimethyl sulfoxide electrolyte. While the ORR appears irreversible, the introduction of a tetrabutylammonium perchlorate (TBAClO(4)) co-salt in excess...

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Autores principales: Lu, Yi-Ting, Neale, Alex R., Hu, Chi-Chang, Hardwick, Laurence J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8246276/
https://www.ncbi.nlm.nih.gov/pubmed/34257892
http://dx.doi.org/10.1039/d0sc06991d
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author Lu, Yi-Ting
Neale, Alex R.
Hu, Chi-Chang
Hardwick, Laurence J.
author_facet Lu, Yi-Ting
Neale, Alex R.
Hu, Chi-Chang
Hardwick, Laurence J.
author_sort Lu, Yi-Ting
collection PubMed
description Electrochemical investigations of the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) have been conducted in a Ca(2+)-containing dimethyl sulfoxide electrolyte. While the ORR appears irreversible, the introduction of a tetrabutylammonium perchlorate (TBAClO(4)) co-salt in excess concentrations results in the gradual appearance of a quasi-reversible OER process. Combining the results of systematic cyclic voltammetry investigations, the degree of reversibility depends on the ion pair competition between Ca(2+) and TBA(+) cations to interact with generated superoxide (O(2)(−)). When TBA(+) is in larger concentrations, and large reductive overpotentials are applied, a quasi-reversible OER peak emerges with repeated cycling (characteristic of formulations without Ca(2+) cations). In situ Raman microscopy and rotating ring-disc electrode (RRDE) experiments revealed more about the nature of species formed at the electrode surface and indicated the progressive evolution of a charge storage mechanism based upon trapped interfacial redox. The first electrochemical step involves generation of O(2)(−), followed primarily by partial passivation of the surface by Ca(x)O(y) product formation (the dominant initial reaction). Once this product matrix develops, the subsequent formation of TBA(+)--O(2)(−) is contained within the Ca(x)O(y) product interlayer at the electrode surface and, consequently, undergoes a facile oxidation reaction to regenerate O(2).
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spelling pubmed-82462762021-07-12 Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte Lu, Yi-Ting Neale, Alex R. Hu, Chi-Chang Hardwick, Laurence J. Chem Sci Chemistry Electrochemical investigations of the oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) have been conducted in a Ca(2+)-containing dimethyl sulfoxide electrolyte. While the ORR appears irreversible, the introduction of a tetrabutylammonium perchlorate (TBAClO(4)) co-salt in excess concentrations results in the gradual appearance of a quasi-reversible OER process. Combining the results of systematic cyclic voltammetry investigations, the degree of reversibility depends on the ion pair competition between Ca(2+) and TBA(+) cations to interact with generated superoxide (O(2)(−)). When TBA(+) is in larger concentrations, and large reductive overpotentials are applied, a quasi-reversible OER peak emerges with repeated cycling (characteristic of formulations without Ca(2+) cations). In situ Raman microscopy and rotating ring-disc electrode (RRDE) experiments revealed more about the nature of species formed at the electrode surface and indicated the progressive evolution of a charge storage mechanism based upon trapped interfacial redox. The first electrochemical step involves generation of O(2)(−), followed primarily by partial passivation of the surface by Ca(x)O(y) product formation (the dominant initial reaction). Once this product matrix develops, the subsequent formation of TBA(+)--O(2)(−) is contained within the Ca(x)O(y) product interlayer at the electrode surface and, consequently, undergoes a facile oxidation reaction to regenerate O(2). The Royal Society of Chemistry 2021-05-28 /pmc/articles/PMC8246276/ /pubmed/34257892 http://dx.doi.org/10.1039/d0sc06991d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lu, Yi-Ting
Neale, Alex R.
Hu, Chi-Chang
Hardwick, Laurence J.
Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte
title Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte
title_full Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte
title_fullStr Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte
title_full_unstemmed Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte
title_short Trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous Ca(2+) electrolyte
title_sort trapped interfacial redox introduces reversibility in the oxygen reduction reaction in a non-aqueous ca(2+) electrolyte
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8246276/
https://www.ncbi.nlm.nih.gov/pubmed/34257892
http://dx.doi.org/10.1039/d0sc06991d
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