A circular membrane for nano thin film micro solid oxide fuel cells with enhanced mechanical stability

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We demonstrate a new architecture for a low temperature solid oxide fuel cell to enlarge the lateral dimension of the fragile nano thin film electrolyte from the micrometer to millimeter scale with greatly enhanced mechanical stability. The new structure was achieved by simple silicon micromachining processes to change the membrane shape from a square to a circle to reduce buckling-induced stress concentration that often caused membrane fracture. A tapered silicon membrane support with the thickest end of 30 mm was introduced as an effective membrane stress absorber. The new architecture effectively suppressed membrane buckling and decreased the maximum principal stress by 30-40%. The largest lateral dimension of the stable membranes was 3 mm in diameter, and the survival rate was significantly improved over square membranes having the same lateral dimension. Fuel cells with 100 nm-thick electrolytes showed stable open circuit voltages of 1.12 V at 400 degrees C for more than 8 hours without any membrane failure observed, showing the superior mechanical stability of the new cell architecture that is promising in the further practical applications of such devices.
Publisher
ROYAL SOC CHEMISTRY
Issue Date
2015
Language
English
Article Type
Article
Keywords

ATOMIC LAYER DEPOSITION; PULSED-LASER DEPOSITION; ZIRCONIA ELECTROLYTE; RESIDUAL-STRESS; MICROSTRUCTURE; OPERATION; BOUNDARY

Citation

ENERGY & ENVIRONMENTAL SCIENCE, v.8, no.11, pp.3374 - 3380

ISSN
1754-5692
DOI
10.1039/c5ee02328a
URI
http://hdl.handle.net/10203/245967
Appears in Collection
ME-Journal Papers(저널논문)
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