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Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells

ABSTRACT: The effect of inkjet printing infiltration of Gd(0.1)Ce(0.9)O(2−x) in NiO-Gd(0.1)Ce(0.9)O(2−x) anodes on the performance of symmetrical and button cells was investigated. The anodes were fabricated by inkjet printing of suspension and sol inks. Symmetrical cells were produced from composit...

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Autores principales: Wang, C., Tomov, R. I., Mitchell-Williams, T. B., Kumar, R. V., Glowacki, B. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer Netherlands 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6961478/
https://www.ncbi.nlm.nih.gov/pubmed/32009668
http://dx.doi.org/10.1007/s10800-017-1114-x
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author Wang, C.
Tomov, R. I.
Mitchell-Williams, T. B.
Kumar, R. V.
Glowacki, B. A.
author_facet Wang, C.
Tomov, R. I.
Mitchell-Williams, T. B.
Kumar, R. V.
Glowacki, B. A.
author_sort Wang, C.
collection PubMed
description ABSTRACT: The effect of inkjet printing infiltration of Gd(0.1)Ce(0.9)O(2−x) in NiO-Gd(0.1)Ce(0.9)O(2−x) anodes on the performance of symmetrical and button cells was investigated. The anodes were fabricated by inkjet printing of suspension and sol inks. Symmetrical cells were produced from composite suspension inks on Gd(0.1)Ce(0.9)O(2−x) electrolyte. As-prepared scaffolds were infiltrated with Gd(0.1)Ce(0.9)O(2) ink. Increasing the number of infiltration steps led to formation of “nano-decoration” on pre-sintered anodes. High resolution SEM analysis was employed for micro-structural characterization revealing formation of fine anode sub-structure with nanoparticle size varying in the range of 50–200 nm. EIS tests were conducted on symmetrical cells in 4% hydrogen/argon gas flow. The measurements showed substantial reduction of the activation polarization as a function of the number of infiltrations. The effect was assigned to the extension of the triple phase boundary. The i–V testing of a reference (NiO-8 mol% Y(2)O(3) stabilized ZrO(2)/NiO-Gd(0.1)Ce(0.9)O(2−x)/Gd(0.1)Ce(0.9)O(2−x)/Gd(0.1)Ce(0.9)O(2−x)-La(0.6)Sr(0.4)Co(0.2)Fe(0.8)O(3−δ)) cell and an identical cell with infiltrated anode revealed ~2.5 times improvement in the maximum output power at 600 °C which corresponded with the reduction of the polarization resistance of the symmetrical cells at the same temperature (2.8 times). This study demonstrated the potential of inkjet printing technology as an infiltration tool for cost effective commercial SOFC processing. GRAPHICAL ABSTRACT: [Image: see text]
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spelling pubmed-69614782020-01-29 Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells Wang, C. Tomov, R. I. Mitchell-Williams, T. B. Kumar, R. V. Glowacki, B. A. J Appl Electrochem Research Article ABSTRACT: The effect of inkjet printing infiltration of Gd(0.1)Ce(0.9)O(2−x) in NiO-Gd(0.1)Ce(0.9)O(2−x) anodes on the performance of symmetrical and button cells was investigated. The anodes were fabricated by inkjet printing of suspension and sol inks. Symmetrical cells were produced from composite suspension inks on Gd(0.1)Ce(0.9)O(2−x) electrolyte. As-prepared scaffolds were infiltrated with Gd(0.1)Ce(0.9)O(2) ink. Increasing the number of infiltration steps led to formation of “nano-decoration” on pre-sintered anodes. High resolution SEM analysis was employed for micro-structural characterization revealing formation of fine anode sub-structure with nanoparticle size varying in the range of 50–200 nm. EIS tests were conducted on symmetrical cells in 4% hydrogen/argon gas flow. The measurements showed substantial reduction of the activation polarization as a function of the number of infiltrations. The effect was assigned to the extension of the triple phase boundary. The i–V testing of a reference (NiO-8 mol% Y(2)O(3) stabilized ZrO(2)/NiO-Gd(0.1)Ce(0.9)O(2−x)/Gd(0.1)Ce(0.9)O(2−x)/Gd(0.1)Ce(0.9)O(2−x)-La(0.6)Sr(0.4)Co(0.2)Fe(0.8)O(3−δ)) cell and an identical cell with infiltrated anode revealed ~2.5 times improvement in the maximum output power at 600 °C which corresponded with the reduction of the polarization resistance of the symmetrical cells at the same temperature (2.8 times). This study demonstrated the potential of inkjet printing technology as an infiltration tool for cost effective commercial SOFC processing. GRAPHICAL ABSTRACT: [Image: see text] Springer Netherlands 2017-08-17 2017 /pmc/articles/PMC6961478/ /pubmed/32009668 http://dx.doi.org/10.1007/s10800-017-1114-x Text en © The Author(s) 2017 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.
spellingShingle Research Article
Wang, C.
Tomov, R. I.
Mitchell-Williams, T. B.
Kumar, R. V.
Glowacki, B. A.
Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells
title Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells
title_full Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells
title_fullStr Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells
title_full_unstemmed Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells
title_short Inkjet printing infiltration of Ni-Gd:CeO(2) anodes for low temperature solid oxide fuel cells
title_sort inkjet printing infiltration of ni-gd:ceo(2) anodes for low temperature solid oxide fuel cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6961478/
https://www.ncbi.nlm.nih.gov/pubmed/32009668
http://dx.doi.org/10.1007/s10800-017-1114-x
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