volume 156 issue 4 pages B458

Finite-Element Modeling of Idealized Infiltrated Composite Solid Oxide Fuel Cell Cathodes

Publication typeJournal Article
Publication date2009-02-24
scimago Q1
wos Q2
SJR0.774
CiteScore6.1
Impact factor3.3
ISSN00134651, 19457111
Materials Chemistry
Surfaces, Coatings and Films
Electronic, Optical and Magnetic Materials
Electrochemistry
Condensed Matter Physics
Renewable Energy, Sustainability and the Environment
Abstract
The polarization resistance of idealized, branched, composite cathodes was modeled using a two-dimensional finite element calculation. The model structures consisted of micrometer-scale columns and nanoscale branches of ionically conducting materials that were coated with a mixed-conducting material. The structures approximate an ionic-conductor matrix infiltrated first with the same ionic-conductor material and then with a mixed conductor. Increasing the length of the ionically conducting nanobranches, and hence, the surface area of the infiltrated mixed conductor, resulted in a factor of ∼ 10 polarization resistance decrease compared to mixed-conductor-coated columns without ionically conducting nanobranches. For many solid oxide fuel cell relevant temperatures (500-900°C), cathode geometries, and materials, the cathode resistance was limited by surface oxygen exchange and hence, was inversely proportional to the mixed-conductor surface area. However, for cathode columns or branches with large enough aspect ratios, ionic-conduction losses also limited the polarization resistance. The characteristic length of nanostructured cathodes was found to depend on the cathode surface area ratio in addition to the traditional bulk diffusion constant to surface exchange constant ratio (D/k). Lastly, the effects of materials properties, particularly ionic conductivity and surface resistance, were investigated and discussed for common cathode materials.
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Nicholas J. D., Barnett S. A. Finite-Element Modeling of Idealized Infiltrated Composite Solid Oxide Fuel Cell Cathodes // Journal of the Electrochemical Society. 2009. Vol. 156. No. 4. p. B458.
GOST all authors (up to 50) Copy
Nicholas J. D., Barnett S. A. Finite-Element Modeling of Idealized Infiltrated Composite Solid Oxide Fuel Cell Cathodes // Journal of the Electrochemical Society. 2009. Vol. 156. No. 4. p. B458.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1149/1.3076133
UR - https://doi.org/10.1149/1.3076133
TI - Finite-Element Modeling of Idealized Infiltrated Composite Solid Oxide Fuel Cell Cathodes
T2 - Journal of the Electrochemical Society
AU - Nicholas, Jason D.
AU - Barnett, Scott A.
PY - 2009
DA - 2009/02/24
PB - The Electrochemical Society
SP - B458
IS - 4
VL - 156
SN - 0013-4651
SN - 1945-7111
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2009_Nicholas,
author = {Jason D. Nicholas and Scott A. Barnett},
title = {Finite-Element Modeling of Idealized Infiltrated Composite Solid Oxide Fuel Cell Cathodes},
journal = {Journal of the Electrochemical Society},
year = {2009},
volume = {156},
publisher = {The Electrochemical Society},
month = {feb},
url = {https://doi.org/10.1149/1.3076133},
number = {4},
pages = {B458},
doi = {10.1149/1.3076133}
}
MLA
Cite this
MLA Copy
Nicholas, Jason D., and Scott A. Barnett. “Finite-Element Modeling of Idealized Infiltrated Composite Solid Oxide Fuel Cell Cathodes.” Journal of the Electrochemical Society, vol. 156, no. 4, Feb. 2009, p. B458. https://doi.org/10.1149/1.3076133.