Electrochemical performance and long-term durability of a 200 W-class solid oxide regenerative fuel cell stack

Authors
Hong, JongsupKim, Hyo-JinPark, Sun-YoungLee, Jin-HoPark, Su-ByungLee, Jong-HoKim, Byung-KookJe, Hae-JoonKim, Jae YukYoon, Kyung Joong
Issue Date
2014-12-03
Publisher
PERGAMON-ELSEVIER SCIENCE LTD
Citation
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, v.39, no.35, pp.20819 - 20828
Abstract
The electrochemical performance and durability of a 200 W-class solid oxide regenerative fuel cell (SORFC) stack are investigated for cyclic mode-changing and long-term operation. Three unit cells (10 cm x 10 cm), each based on a Ni yttria-stabilized zirconia (YSZ) fuel electrode, a scandia-stabilized zirconia (ScSZ) electrolyte and a Sr-doped LaCoO3 (LSC) - gadolinia-doped ceria (GDC) air electrode, are used for the stack development. Delamination of the air electrode is suppressed by using a mixed ionic- and electronic-conducting air electrode with no oxygen excess non-stoichiometry, and gas leakage is minimized by using novel glass-ceramic composite sealants. Excellent electrochemical performance is achieved in a single cell level by minimizing the ohmic and electrode polarizations, and the three-cell stack is successfully configured without major performance loss associated with electrical contacts, gas supply or sealing. Stable operation is confirmed at a thermal neutral voltage for 1000 h in the solid oxide electrolysis cell (SOEC) mode, and the periodic change of the operation mode between the solid oxide fuel cell (SOFC) and SOEC is found to accelerate the performance degradation. The effect of cyclic mode-changing on the stability of the SORFC stacks is discussed in detail based on the observations from the postmortem microstructural analysis. Copyright (C) 2014, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
Keywords
TEMPERATURE WATER ELECTROLYSIS; GLASS-CERAMIC SEALANTS; DEGRADATION MECHANISM; HYDROGEN-PRODUCTION; OXYGEN ELECTRODES; SEALING MATERIALS; SOFC STACK; MICROSTRUCTURE; DELAMINATION; STABILITY; TEMPERATURE WATER ELECTROLYSIS; GLASS-CERAMIC SEALANTS; DEGRADATION MECHANISM; HYDROGEN-PRODUCTION; OXYGEN ELECTRODES; SEALING MATERIALS; SOFC STACK; MICROSTRUCTURE; DELAMINATION; STABILITY; Solid oxide regenerative fuel cell; Solid oxide fuel cell; Solid oxide electrolysis cell; Water electrolysis; Stack; Long-term durability
ISSN
0360-3199
URI
https://pubs.kist.re.kr/handle/201004/126006
DOI
10.1016/j.ijhydene.2014.06.114
Appears in Collections:
KIST Article > 2014
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