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Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst

The electrochemical reduction of molecular oxygen is a fundamental process in Solid Oxide Fuel Cells and requires high efficiency cathode materials. Two La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ)-based perovskite compounds were prepared by solution combustion synthesis, and characterized for their...

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Autores principales: Aliotta, Chiara, Costa, Maria, Liotta, Leonarda Francesca, La Parola, Valeria, Magnacca, Giuliana, Deganello, Francesca
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9965584/
https://www.ncbi.nlm.nih.gov/pubmed/36838609
http://dx.doi.org/10.3390/molecules28041621
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author Aliotta, Chiara
Costa, Maria
Liotta, Leonarda Francesca
La Parola, Valeria
Magnacca, Giuliana
Deganello, Francesca
author_facet Aliotta, Chiara
Costa, Maria
Liotta, Leonarda Francesca
La Parola, Valeria
Magnacca, Giuliana
Deganello, Francesca
author_sort Aliotta, Chiara
collection PubMed
description The electrochemical reduction of molecular oxygen is a fundamental process in Solid Oxide Fuel Cells and requires high efficiency cathode materials. Two La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ)-based perovskite compounds were prepared by solution combustion synthesis, and characterized for their structural, microstructural, surface, redox and electrochemical properties as potential cathodes in comparison with Ba(0.5)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) and La(0.5)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) perovskites. Results highlighted that calcination at 900 °C led to a “bi-perovskite heterostructure”, where two different perovskite structures coexist, whereas at higher calcination temperatures a single-phase perovskite was formed. The results showed the effectiveness of the preparation procedures in co-doping the A-site of perovskites with barium and lanthanum as a strategy to optimize the cathode’s properties. The formation of nanometric heterostructure co-doped in the A-site evidenced an improvement in oxygen vacancies’ availability and in the redox properties, which promoted both processes: oxygen adsorption and oxygen ions drift, through the cathode material, to the electrolyte. A reduction in the total resistance was observed in the case of heterostructured material.
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spelling pubmed-99655842023-02-26 Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst Aliotta, Chiara Costa, Maria Liotta, Leonarda Francesca La Parola, Valeria Magnacca, Giuliana Deganello, Francesca Molecules Article The electrochemical reduction of molecular oxygen is a fundamental process in Solid Oxide Fuel Cells and requires high efficiency cathode materials. Two La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ)-based perovskite compounds were prepared by solution combustion synthesis, and characterized for their structural, microstructural, surface, redox and electrochemical properties as potential cathodes in comparison with Ba(0.5)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) and La(0.5)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) perovskites. Results highlighted that calcination at 900 °C led to a “bi-perovskite heterostructure”, where two different perovskite structures coexist, whereas at higher calcination temperatures a single-phase perovskite was formed. The results showed the effectiveness of the preparation procedures in co-doping the A-site of perovskites with barium and lanthanum as a strategy to optimize the cathode’s properties. The formation of nanometric heterostructure co-doped in the A-site evidenced an improvement in oxygen vacancies’ availability and in the redox properties, which promoted both processes: oxygen adsorption and oxygen ions drift, through the cathode material, to the electrolyte. A reduction in the total resistance was observed in the case of heterostructured material. MDPI 2023-02-08 /pmc/articles/PMC9965584/ /pubmed/36838609 http://dx.doi.org/10.3390/molecules28041621 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Aliotta, Chiara
Costa, Maria
Liotta, Leonarda Francesca
La Parola, Valeria
Magnacca, Giuliana
Deganello, Francesca
Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst
title Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst
title_full Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst
title_fullStr Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst
title_full_unstemmed Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst
title_short Peculiar Properties of the La(0.25)Ba(0.25)Sr(0.5)Co(0.8)Fe(0.2)O(3−δ) Perovskite as Oxygen Reduction Electrocatalyst
title_sort peculiar properties of the la(0.25)ba(0.25)sr(0.5)co(0.8)fe(0.2)o(3−δ) perovskite as oxygen reduction electrocatalyst
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9965584/
https://www.ncbi.nlm.nih.gov/pubmed/36838609
http://dx.doi.org/10.3390/molecules28041621
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