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LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells

[Image: see text] La(0.98)Cr(0.75)Mn(0.25)O(3−δ)–Ce(0.9)Gd(0.1)O(1.95) (LCM-CGO) nanocomposite layers with different LCM contents, between 40 and 60 wt %, are prepared in a single step by a spray-pyrolysis deposition method and evaluated as both air and fuel electrodes for solid oxide fuel cells (SO...

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Autores principales: Zamudio-García, Javier, Porras-Vázquez, José M., Losilla, Enrique R., Marrero-López, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9513820/
https://www.ncbi.nlm.nih.gov/pubmed/36186956
http://dx.doi.org/10.1021/acsaem.1c04116
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author Zamudio-García, Javier
Porras-Vázquez, José M.
Losilla, Enrique R.
Marrero-López, David
author_facet Zamudio-García, Javier
Porras-Vázquez, José M.
Losilla, Enrique R.
Marrero-López, David
author_sort Zamudio-García, Javier
collection PubMed
description [Image: see text] La(0.98)Cr(0.75)Mn(0.25)O(3−δ)–Ce(0.9)Gd(0.1)O(1.95) (LCM-CGO) nanocomposite layers with different LCM contents, between 40 and 60 wt %, are prepared in a single step by a spray-pyrolysis deposition method and evaluated as both air and fuel electrodes for solid oxide fuel cells (SOFCs). The formation of fluorite (CGO) and perovskite (LCM) phases in the nanocomposite electrode is confirmed by different structural and microstructural techniques. The intimate mixture of LCM and CGO phases inhibits the grain growth, retaining the nanoscale microstructure even after annealing at 1000 °C with a grain size lower than 50 nm for LCM-CGO compared to 200 nm for pure LCM. The synergetic effect of nanosized LCM and CGO by combining their high electronic and ionic conductivity, respectively, leads to efficient and durable symmetrical electrodes. The best electrochemical properties are found for 50 wt % LCM-CGO, showing polarization resistance values of 0.29 and 0.09 Ω cm(2) at 750 °C in air and H(2), respectively, compared to 2.05 and 1.9 Ω cm(2) for a screen-printed electrode with the same composition. This outstanding performance is mainly ascribed to the nanoscale electrode microstructure formed directly on the electrolyte at a relatively low temperature. These results reveal that the combination of different immiscible phases with different crystal structures and electrochemical properties could be a promising strategy to design highly efficient and durable air and fuel electrodes for SOFCs.
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spelling pubmed-95138202022-09-28 LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells Zamudio-García, Javier Porras-Vázquez, José M. Losilla, Enrique R. Marrero-López, David ACS Appl Energy Mater [Image: see text] La(0.98)Cr(0.75)Mn(0.25)O(3−δ)–Ce(0.9)Gd(0.1)O(1.95) (LCM-CGO) nanocomposite layers with different LCM contents, between 40 and 60 wt %, are prepared in a single step by a spray-pyrolysis deposition method and evaluated as both air and fuel electrodes for solid oxide fuel cells (SOFCs). The formation of fluorite (CGO) and perovskite (LCM) phases in the nanocomposite electrode is confirmed by different structural and microstructural techniques. The intimate mixture of LCM and CGO phases inhibits the grain growth, retaining the nanoscale microstructure even after annealing at 1000 °C with a grain size lower than 50 nm for LCM-CGO compared to 200 nm for pure LCM. The synergetic effect of nanosized LCM and CGO by combining their high electronic and ionic conductivity, respectively, leads to efficient and durable symmetrical electrodes. The best electrochemical properties are found for 50 wt % LCM-CGO, showing polarization resistance values of 0.29 and 0.09 Ω cm(2) at 750 °C in air and H(2), respectively, compared to 2.05 and 1.9 Ω cm(2) for a screen-printed electrode with the same composition. This outstanding performance is mainly ascribed to the nanoscale electrode microstructure formed directly on the electrolyte at a relatively low temperature. These results reveal that the combination of different immiscible phases with different crystal structures and electrochemical properties could be a promising strategy to design highly efficient and durable air and fuel electrodes for SOFCs. American Chemical Society 2022-04-05 2022-04-25 /pmc/articles/PMC9513820/ /pubmed/36186956 http://dx.doi.org/10.1021/acsaem.1c04116 Text en © 2022 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 Zamudio-García, Javier
Porras-Vázquez, José M.
Losilla, Enrique R.
Marrero-López, David
LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells
title LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells
title_full LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells
title_fullStr LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells
title_full_unstemmed LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells
title_short LaCrO(3)–CeO(2)-Based Nanocomposite Electrodes for Efficient Symmetrical Solid Oxide Fuel Cells
title_sort lacro(3)–ceo(2)-based nanocomposite electrodes for efficient symmetrical solid oxide fuel cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9513820/
https://www.ncbi.nlm.nih.gov/pubmed/36186956
http://dx.doi.org/10.1021/acsaem.1c04116
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