Phase stabilities in molten Li/K carbonate of efficient matrix materials for molten carbonate fuel cells: thermodynamic calculations and experimental investigations

Authors
Patil, Kailash YashvantYoon, Sung PilHan, JongheeLim, Tae-HoonNam, Suk WooOh, In-HwanHong, Seong-Ahn
Issue Date
2011-04
Publisher
SPRINGER
Citation
JOURNAL OF MATERIALS SCIENCE, v.46, no.8, pp.2557 - 2567
Abstract
In this study, we investigated the thermodynamics and experimental performance of Al, Zr, and Ce species under anode and cathode gas conditions in Li/K carbonate at 650 A degrees C. Among the Al, Zr, and Ce species investigated, we found that lithium aluminate (LiAlO2), lithium zirconate (Li2ZrO3), and cerium/ceria oxide (CeO2) were the most stable materials. Experimentally, we performed immersion tests in molten (Li-0.62/K-0.38)(2)CO3 at 650 A degrees C to evaluate the phase and microstructure stabilities of these materials. The gamma-LiAlO2 phase transformation, determined using X-ray diffractometry, was dependent on the immersion time. We performed similar measurements for alpha-LiAlO2, Li2ZrO3, and CeO2 materials in molten Li/K carbonate at 650 A degrees C. From immersion tests, the presence of the alpha-LiAlO2 phase revealed that phase transformation of gamma-LiAlO2 occurs in Li/K carbonate melts under cathode gas atmospheres; in contrast, no phase transformation was evident after immersion of the pure alpha-LiAlO2 phase in molten carbonate for 5,000 h. Furthermore, we found that Li2ZrO3 and CeO2 were stable phases after immersion in molten carbonate at 650 A degrees C, under both anode and cathode gas atmospheres, for more than 5,000 h.
Keywords
ELECTROLYTE MATRIX; LITHIUM ALUMINATE; CRYSTAL-STRUCTURE; LIALO2; LI2CO3-NA2CO3; BEHAVIOR; TRANSFORMATION; GROWTH; NICKEL; ELECTROLYTE MATRIX; LITHIUM ALUMINATE; CRYSTAL-STRUCTURE; LIALO2; LI2CO3-NA2CO3; BEHAVIOR; TRANSFORMATION; GROWTH; NICKEL; Phase stability; Thermodynamic calculation; matrix material
ISSN
0022-2461
URI
https://pubs.kist.re.kr/handle/201004/130503
DOI
10.1007/s10853-010-5108-x
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KIST Article > 2011
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