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Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides

[Image: see text] Compositionally versatile, nonstoichiometric, mixed ionic–electronic conducting metal oxides of the form A(n+1)B(n)O(3n+1) (n = 1 → ∞; A = rare-earth-/alkaline-earth-metal cation; B = transition-metal (TM) cation) remain a highly attractive class of electrocatalysts for catalyzing...

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Autores principales: Samira, Samji, Hong, Jiyun, Camayang, John Carl A., Sun, Kai, Hoffman, Adam S., Bare, Simon R., Nikolla, Eranda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8715492/
https://www.ncbi.nlm.nih.gov/pubmed/34977894
http://dx.doi.org/10.1021/jacsau.1c00359
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author Samira, Samji
Hong, Jiyun
Camayang, John Carl A.
Sun, Kai
Hoffman, Adam S.
Bare, Simon R.
Nikolla, Eranda
author_facet Samira, Samji
Hong, Jiyun
Camayang, John Carl A.
Sun, Kai
Hoffman, Adam S.
Bare, Simon R.
Nikolla, Eranda
author_sort Samira, Samji
collection PubMed
description [Image: see text] Compositionally versatile, nonstoichiometric, mixed ionic–electronic conducting metal oxides of the form A(n+1)B(n)O(3n+1) (n = 1 → ∞; A = rare-earth-/alkaline-earth-metal cation; B = transition-metal (TM) cation) remain a highly attractive class of electrocatalysts for catalyzing the energy-intensive oxygen evolution reaction (OER). The current design strategies for describing their OER activities are largely derived assuming a static, unchanged view of their surfaces, despite reports of dynamic structural changes to 3d TM-based perovskites during OER. Herein, through variations in the A- and B-site compositions of A(n+1)B(n)O(3n+1) oxides (n = 1 (A(2)BO(4)) or n = ∞ (ABO(3)); A = La, Sr, Ca; B = Mn, Fe, Co, Ni), we show that, in the absence of electrolyte impurities, surface restructuring is universally the source of high OER activity in these oxides and is dependent on the initial oxide composition. Oxide surface restructuring is induced by irreversible A-site cation dissolution, resulting in in situ formation of a TM oxyhydroxide shell on top of the parent oxide core that serves as the active surface for OER. The rate of surface restructuring is found to depend on (i) composition of A-site cations, with alkaline-earth-metal cations dominating lanthanide cation dissolution, (ii) oxide crystal phase, with n = 1 A(2)BO(4) oxides exhibiting higher rates of A-site dissolution in comparison to n = ∞ ABO(3) perovskites, (iii) lattice strain in the oxide induced by mixed rare-earth- and alkaline-earth-metal cations in the A-site, and (iv) oxide reducibility. Among the in situ generated 3d TM oxyhydroxide structures from A(n+1)B(n)O(3n+1) oxides, Co-based structures are characterized by superior OER activity and stability, even in comparison to as-synthesized Co-oxyhydroxide, pointing to the generation of high active surface area structures through oxide restructuring. These insights are critical toward the development of revised design criteria to include surface dynamics for effectively describing the OER activity of nonstoichiometric mixed-metal oxides.
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spelling pubmed-87154922021-12-30 Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides Samira, Samji Hong, Jiyun Camayang, John Carl A. Sun, Kai Hoffman, Adam S. Bare, Simon R. Nikolla, Eranda JACS Au [Image: see text] Compositionally versatile, nonstoichiometric, mixed ionic–electronic conducting metal oxides of the form A(n+1)B(n)O(3n+1) (n = 1 → ∞; A = rare-earth-/alkaline-earth-metal cation; B = transition-metal (TM) cation) remain a highly attractive class of electrocatalysts for catalyzing the energy-intensive oxygen evolution reaction (OER). The current design strategies for describing their OER activities are largely derived assuming a static, unchanged view of their surfaces, despite reports of dynamic structural changes to 3d TM-based perovskites during OER. Herein, through variations in the A- and B-site compositions of A(n+1)B(n)O(3n+1) oxides (n = 1 (A(2)BO(4)) or n = ∞ (ABO(3)); A = La, Sr, Ca; B = Mn, Fe, Co, Ni), we show that, in the absence of electrolyte impurities, surface restructuring is universally the source of high OER activity in these oxides and is dependent on the initial oxide composition. Oxide surface restructuring is induced by irreversible A-site cation dissolution, resulting in in situ formation of a TM oxyhydroxide shell on top of the parent oxide core that serves as the active surface for OER. The rate of surface restructuring is found to depend on (i) composition of A-site cations, with alkaline-earth-metal cations dominating lanthanide cation dissolution, (ii) oxide crystal phase, with n = 1 A(2)BO(4) oxides exhibiting higher rates of A-site dissolution in comparison to n = ∞ ABO(3) perovskites, (iii) lattice strain in the oxide induced by mixed rare-earth- and alkaline-earth-metal cations in the A-site, and (iv) oxide reducibility. Among the in situ generated 3d TM oxyhydroxide structures from A(n+1)B(n)O(3n+1) oxides, Co-based structures are characterized by superior OER activity and stability, even in comparison to as-synthesized Co-oxyhydroxide, pointing to the generation of high active surface area structures through oxide restructuring. These insights are critical toward the development of revised design criteria to include surface dynamics for effectively describing the OER activity of nonstoichiometric mixed-metal oxides. American Chemical Society 2021-11-05 /pmc/articles/PMC8715492/ /pubmed/34977894 http://dx.doi.org/10.1021/jacsau.1c00359 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Samira, Samji
Hong, Jiyun
Camayang, John Carl A.
Sun, Kai
Hoffman, Adam S.
Bare, Simon R.
Nikolla, Eranda
Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides
title Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides
title_full Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides
title_fullStr Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides
title_full_unstemmed Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides
title_short Dynamic Surface Reconstruction Unifies the Electrocatalytic Oxygen Evolution Performance of Nonstoichiometric Mixed Metal Oxides
title_sort dynamic surface reconstruction unifies the electrocatalytic oxygen evolution performance of nonstoichiometric mixed metal oxides
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8715492/
https://www.ncbi.nlm.nih.gov/pubmed/34977894
http://dx.doi.org/10.1021/jacsau.1c00359
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