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Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts

[Image: see text] The oxygen evolution reaction (OER) is crucial to future energy systems based on water electrolysis. Iridium oxides are promising catalysts due to their resistance to corrosion under acidic and oxidizing conditions. Highly active iridium (oxy)hydroxides prepared using alkali metal...

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Autores principales: Ruiz Esquius, Jonathan, Morgan, David J., Algara Siller, Gerardo, Gianolio, Diego, Aramini, Matteo, Lahn, Leopold, Kasian, Olga, Kondrat, Simon A., Schlögl, Robert, Hutchings, Graham J., Arrigo, Rosa, Freakley, Simon J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10037335/
https://www.ncbi.nlm.nih.gov/pubmed/36892000
http://dx.doi.org/10.1021/jacs.2c13567
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author Ruiz Esquius, Jonathan
Morgan, David J.
Algara Siller, Gerardo
Gianolio, Diego
Aramini, Matteo
Lahn, Leopold
Kasian, Olga
Kondrat, Simon A.
Schlögl, Robert
Hutchings, Graham J.
Arrigo, Rosa
Freakley, Simon J.
author_facet Ruiz Esquius, Jonathan
Morgan, David J.
Algara Siller, Gerardo
Gianolio, Diego
Aramini, Matteo
Lahn, Leopold
Kasian, Olga
Kondrat, Simon A.
Schlögl, Robert
Hutchings, Graham J.
Arrigo, Rosa
Freakley, Simon J.
author_sort Ruiz Esquius, Jonathan
collection PubMed
description [Image: see text] The oxygen evolution reaction (OER) is crucial to future energy systems based on water electrolysis. Iridium oxides are promising catalysts due to their resistance to corrosion under acidic and oxidizing conditions. Highly active iridium (oxy)hydroxides prepared using alkali metal bases transform into low activity rutile IrO(2) at elevated temperatures (>350 °C) during catalyst/electrode preparation. Depending on the residual amount of alkali metals, we now show that this transformation can result in either rutile IrO(2) or nano-crystalline Li-intercalated IrO(x). While the transition to rutile results in poor activity, the Li-intercalated IrO(x) has comparative activity and improved stability when compared to the highly active amorphous material despite being treated at 500 °C. This highly active nanocrystalline form of lithium iridate could be more resistant to industrial procedures to produce PEM membranes and provide a route to stabilize the high populations of redox active sites of amorphous iridium (oxy)hydroxides.
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spelling pubmed-100373352023-03-25 Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts Ruiz Esquius, Jonathan Morgan, David J. Algara Siller, Gerardo Gianolio, Diego Aramini, Matteo Lahn, Leopold Kasian, Olga Kondrat, Simon A. Schlögl, Robert Hutchings, Graham J. Arrigo, Rosa Freakley, Simon J. J Am Chem Soc [Image: see text] The oxygen evolution reaction (OER) is crucial to future energy systems based on water electrolysis. Iridium oxides are promising catalysts due to their resistance to corrosion under acidic and oxidizing conditions. Highly active iridium (oxy)hydroxides prepared using alkali metal bases transform into low activity rutile IrO(2) at elevated temperatures (>350 °C) during catalyst/electrode preparation. Depending on the residual amount of alkali metals, we now show that this transformation can result in either rutile IrO(2) or nano-crystalline Li-intercalated IrO(x). While the transition to rutile results in poor activity, the Li-intercalated IrO(x) has comparative activity and improved stability when compared to the highly active amorphous material despite being treated at 500 °C. This highly active nanocrystalline form of lithium iridate could be more resistant to industrial procedures to produce PEM membranes and provide a route to stabilize the high populations of redox active sites of amorphous iridium (oxy)hydroxides. American Chemical Society 2023-03-09 /pmc/articles/PMC10037335/ /pubmed/36892000 http://dx.doi.org/10.1021/jacs.2c13567 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Ruiz Esquius, Jonathan
Morgan, David J.
Algara Siller, Gerardo
Gianolio, Diego
Aramini, Matteo
Lahn, Leopold
Kasian, Olga
Kondrat, Simon A.
Schlögl, Robert
Hutchings, Graham J.
Arrigo, Rosa
Freakley, Simon J.
Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts
title Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts
title_full Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts
title_fullStr Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts
title_full_unstemmed Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts
title_short Lithium-Directed Transformation of Amorphous Iridium (Oxy)hydroxides To Produce Active Water Oxidation Catalysts
title_sort lithium-directed transformation of amorphous iridium (oxy)hydroxides to produce active water oxidation catalysts
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10037335/
https://www.ncbi.nlm.nih.gov/pubmed/36892000
http://dx.doi.org/10.1021/jacs.2c13567
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