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High performance zirconia-bismuth oxide nanocomposite electrolytes for lower temperature solid oxide fuel cells
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Title
High performance zirconia-bismuth oxide nanocomposite electrolytes for lower temperature solid oxide fuel cells
Issued Date
2016-07-15
Citation
Joh, Dong Woo. (2016-07-15). High performance zirconia-bismuth oxide nanocomposite electrolytes for lower temperature solid oxide fuel cells. Journal of Power Sources, 320, 267–273. doi: 10.1016/j.jpowsour.2016.04.090
Type
Article
Author Keywords
Solid oxide fuel cellsBismuth oxideZirconiaElectrolyteNanocompositeIonic conductivity
Keywords
ANODEBismuthBismuth OxideBismuth OxidesCathodesDissociative Oxygen AdsorptionELECTROLYTEElectrolytesElectrolytic ReductionErbia-Stabilized Bismuth OxidesFuel CellsGas AdsorptionGas Fuel PurificationGrain BoundariesIonic Conduction in SolidsIonic ConductivityLow Sintering TemperatureMicrostructural AnalysisNanocompositeNanocomposite ElectrolytesNanocompositesOxygenOxygen Reduction ReactionSinteringSOFCSolid ElectrolytesSolid Oxide Fuel CellsSolid Oxide Fuel Cells (SOFC)YTTRIA-STABILIZED ZIRCONIAYttria-Stabilized Zirconias (YSZ)Zirconia
ISSN
0378-7753
Abstract
We develop a novel nanocomposite electrolyte, consisting of yttria-stabilized zirconia (YSZ) and erbia-stabilized bismuth oxide (ESB). The 20 mol% ESB-incorporated YSZ composite (20ESB-YSZ) achieves the high density (>97%) at the low sintering temperature of 800 °C. The microstructural analysis of 20ESB-YSZ reveals the characteristic nanocomposite structure of the highly percolated ESB phase at the YSZ grain boundaries (a few ∼ nm thick). The ionic conductivity of 20ESB-YSZ is increased by 5 times compared to that of the conventional YSZ due to the fast oxygen ion transport along the ESB phase. Moreover, this high conductivity is maintained up to 580 h, indicating high stability of the ESB-YSZ nanocomposite. In addition, the oxygen reduction reaction at the composite electrolyte/cathode interface is effectively enhanced (∼70%) at the temperature below 650 °C, mainly due to the fast dissociative oxygen adsorption on the ESB surface as well as the rapid oxygen ion incorporation into the ESB lattice. Thus, we believe this ESB-YSZ nanocomposite is a promising electrolyte for high performance solid oxide fuel cells at reduced temperatures. © 2016 Elsevier B.V. All rights reserved.
URI
http://hdl.handle.net/20.500.11750/2238
DOI
10.1016/j.jpowsour.2016.04.090
Publisher
Elsevier B.V.
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