Cargando…

Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions

Catalysts for the oxygen evolution reaction (OER) are receiving great interest since OER remains the bottleneck of water electrolyzers for hydrogen production. Especially, OER in acidic solutions is crucial since it produces high current densities and avoids precipitation of carbonates. However, eve...

Descripción completa

Detalles Bibliográficos
Autores principales: Hirai, Shigeto, Yagi, Shunsuke, Oh, He-Chan, Sato, Yoshiki, Liu, Wei, Liu, En-Pei, Chen, Wei-Tin, Miura, Akira, Nagao, Masanori, Ohno, Tomoya, Matsuda, Takeshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415035/
https://www.ncbi.nlm.nih.gov/pubmed/36128544
http://dx.doi.org/10.1039/d2ra04624e
_version_ 1784776133372280832
author Hirai, Shigeto
Yagi, Shunsuke
Oh, He-Chan
Sato, Yoshiki
Liu, Wei
Liu, En-Pei
Chen, Wei-Tin
Miura, Akira
Nagao, Masanori
Ohno, Tomoya
Matsuda, Takeshi
author_facet Hirai, Shigeto
Yagi, Shunsuke
Oh, He-Chan
Sato, Yoshiki
Liu, Wei
Liu, En-Pei
Chen, Wei-Tin
Miura, Akira
Nagao, Masanori
Ohno, Tomoya
Matsuda, Takeshi
author_sort Hirai, Shigeto
collection PubMed
description Catalysts for the oxygen evolution reaction (OER) are receiving great interest since OER remains the bottleneck of water electrolyzers for hydrogen production. Especially, OER in acidic solutions is crucial since it produces high current densities and avoids precipitation of carbonates. However, even the acid stable iridates undergo severe dissolution during the OER. BaIrO(3) has the strongest IrO(6) connectivity and stable surface structure, yet it suffers from lattice collapse after OER cycling, making it difficult to improve the OER durability. In the present study, we have successfully developed an OER catalyst with both high intrinsic activity and stability under acidic conditions by preventing the lattice collapse after repeated OER cycling. Specifically, we find that the substitution of Ir-site with Mn for BaIrO(3) in combination with OER cycling leads to a remarkable activity enhancement by a factor of 28 and an overall improvement in stability. This dual enhancement of OER performance was accomplished by the novel strategy of slightly increasing the Ir-dissolution and balancing the elemental dissolution in BaIr(1−x)Mn(x)O(3) to reconstruct a rigid surface with BaIrO(3)-type structure. More importantly, the mass activity for BaIr(0.8)Mn(0.2)O(3) reached ∼73 times of that for IrO(2), making it a sustainable and promising OER catalyst for energy conversion technologies.
format Online
Article
Text
id pubmed-9415035
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-94150352022-09-19 Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions Hirai, Shigeto Yagi, Shunsuke Oh, He-Chan Sato, Yoshiki Liu, Wei Liu, En-Pei Chen, Wei-Tin Miura, Akira Nagao, Masanori Ohno, Tomoya Matsuda, Takeshi RSC Adv Chemistry Catalysts for the oxygen evolution reaction (OER) are receiving great interest since OER remains the bottleneck of water electrolyzers for hydrogen production. Especially, OER in acidic solutions is crucial since it produces high current densities and avoids precipitation of carbonates. However, even the acid stable iridates undergo severe dissolution during the OER. BaIrO(3) has the strongest IrO(6) connectivity and stable surface structure, yet it suffers from lattice collapse after OER cycling, making it difficult to improve the OER durability. In the present study, we have successfully developed an OER catalyst with both high intrinsic activity and stability under acidic conditions by preventing the lattice collapse after repeated OER cycling. Specifically, we find that the substitution of Ir-site with Mn for BaIrO(3) in combination with OER cycling leads to a remarkable activity enhancement by a factor of 28 and an overall improvement in stability. This dual enhancement of OER performance was accomplished by the novel strategy of slightly increasing the Ir-dissolution and balancing the elemental dissolution in BaIr(1−x)Mn(x)O(3) to reconstruct a rigid surface with BaIrO(3)-type structure. More importantly, the mass activity for BaIr(0.8)Mn(0.2)O(3) reached ∼73 times of that for IrO(2), making it a sustainable and promising OER catalyst for energy conversion technologies. The Royal Society of Chemistry 2022-08-26 /pmc/articles/PMC9415035/ /pubmed/36128544 http://dx.doi.org/10.1039/d2ra04624e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Hirai, Shigeto
Yagi, Shunsuke
Oh, He-Chan
Sato, Yoshiki
Liu, Wei
Liu, En-Pei
Chen, Wei-Tin
Miura, Akira
Nagao, Masanori
Ohno, Tomoya
Matsuda, Takeshi
Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions
title Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions
title_full Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions
title_fullStr Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions
title_full_unstemmed Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions
title_short Highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in BaIrO(3) solid solutions
title_sort highly active and stable surface structure for oxygen evolution reaction originating from balanced dissolution and strong connectivity in bairo(3) solid solutions
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415035/
https://www.ncbi.nlm.nih.gov/pubmed/36128544
http://dx.doi.org/10.1039/d2ra04624e
work_keys_str_mv AT hiraishigeto highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT yagishunsuke highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT ohhechan highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT satoyoshiki highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT liuwei highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT liuenpei highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT chenweitin highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT miuraakira highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT nagaomasanori highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT ohnotomoya highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions
AT matsudatakeshi highlyactiveandstablesurfacestructureforoxygenevolutionreactionoriginatingfrombalanceddissolutionandstrongconnectivityinbairo3solidsolutions