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Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts

Nickel-iron layered double hydroxides are known to be one of the most highly active catalysts for the oxygen evolution reaction in alkaline conditions. The high electrocatalytic activity of the material however cannot be sustained within the active voltage window on timescales consistent with commer...

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Autores principales: Tyndall, Daire, Craig, Michael John, Gannon, Lee, McGuinness, Cormac, McEvoy, Niall, Roy, Ahin, García-Melchor, Max, Browne, Michelle P., Nicolosi, Valeria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942694/
https://www.ncbi.nlm.nih.gov/pubmed/36846496
http://dx.doi.org/10.1039/d2ta07261k
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author Tyndall, Daire
Craig, Michael John
Gannon, Lee
McGuinness, Cormac
McEvoy, Niall
Roy, Ahin
García-Melchor, Max
Browne, Michelle P.
Nicolosi, Valeria
author_facet Tyndall, Daire
Craig, Michael John
Gannon, Lee
McGuinness, Cormac
McEvoy, Niall
Roy, Ahin
García-Melchor, Max
Browne, Michelle P.
Nicolosi, Valeria
author_sort Tyndall, Daire
collection PubMed
description Nickel-iron layered double hydroxides are known to be one of the most highly active catalysts for the oxygen evolution reaction in alkaline conditions. The high electrocatalytic activity of the material however cannot be sustained within the active voltage window on timescales consistent with commercial requirements. The goal of this work is to identify and prove the source of inherent catalyst instability by tracking changes in the material during OER activity. By combining in situ and ex situ Raman analyses we elucidate long-term effects on the catalyst performance from a changing crystallographic phase. In particular, we attribute electrochemically stimulated compositional degradation at active sites as the principal cause of the sharp loss of activity from NiFe LDHs shortly after the alkaline cell is turned on. EDX, XPS, and EELS analyses performed after OER also reveal noticeable leaching of Fe metals compared to Ni, principally from highly active edge sites. In addition, post-cycle analysis identified a ferrihydrite by-product formed from the leached Fe. Density functional theory calculations shed light on the thermodynamic driving force for the leaching of Fe metals and propose a dissolution pathway which involves [FeO(4)](2−) removal at relevant OER potentials.
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spelling pubmed-99426942023-02-22 Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts Tyndall, Daire Craig, Michael John Gannon, Lee McGuinness, Cormac McEvoy, Niall Roy, Ahin García-Melchor, Max Browne, Michelle P. Nicolosi, Valeria J Mater Chem A Mater Chemistry Nickel-iron layered double hydroxides are known to be one of the most highly active catalysts for the oxygen evolution reaction in alkaline conditions. The high electrocatalytic activity of the material however cannot be sustained within the active voltage window on timescales consistent with commercial requirements. The goal of this work is to identify and prove the source of inherent catalyst instability by tracking changes in the material during OER activity. By combining in situ and ex situ Raman analyses we elucidate long-term effects on the catalyst performance from a changing crystallographic phase. In particular, we attribute electrochemically stimulated compositional degradation at active sites as the principal cause of the sharp loss of activity from NiFe LDHs shortly after the alkaline cell is turned on. EDX, XPS, and EELS analyses performed after OER also reveal noticeable leaching of Fe metals compared to Ni, principally from highly active edge sites. In addition, post-cycle analysis identified a ferrihydrite by-product formed from the leached Fe. Density functional theory calculations shed light on the thermodynamic driving force for the leaching of Fe metals and propose a dissolution pathway which involves [FeO(4)](2−) removal at relevant OER potentials. The Royal Society of Chemistry 2023-01-17 /pmc/articles/PMC9942694/ /pubmed/36846496 http://dx.doi.org/10.1039/d2ta07261k Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Tyndall, Daire
Craig, Michael John
Gannon, Lee
McGuinness, Cormac
McEvoy, Niall
Roy, Ahin
García-Melchor, Max
Browne, Michelle P.
Nicolosi, Valeria
Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts
title Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts
title_full Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts
title_fullStr Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts
title_full_unstemmed Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts
title_short Demonstrating the source of inherent instability in NiFe LDH-based OER electrocatalysts
title_sort demonstrating the source of inherent instability in nife ldh-based oer electrocatalysts
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9942694/
https://www.ncbi.nlm.nih.gov/pubmed/36846496
http://dx.doi.org/10.1039/d2ta07261k
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