Electrical and microstructural characterization of ceramic gadolinium-doped ceria electrolytes for ITSOFCs by sol-gel route

被引:40
作者
Accardo, Grazia [1 ,2 ]
Ferone, Claudio [1 ,2 ]
Cioffi, Raffaele [1 ,2 ]
Frattini, Domenico [1 ,2 ]
Spiridigliozzi, Luca [3 ,4 ]
Dell'Agli, Gianfranco [3 ,4 ]
机构
[1] Univ Naples Parthenope, Dept Engn, Ctr Direz Is C4, I-80143 Naples, Italy
[2] Univ Naples Parthenope, INSTM Res Unit, I-80143 Naples, Italy
[3] Univ Cassino & Southern Lazio, Dept Civil & Mech Engn, Cassino, Italy
[4] Univ Cassino & Southern Lazio, INSTM Res Unit, Cassino, Italy
关键词
Gadolinium-doped ceria; Ionic conductivity; Sintering; Sol-gel; Solid oxide fuel cell; OXIDE FUEL-CELLS; THERMAL-DECOMPOSITION; COMBUSTION SYNTHESIS; POWDERS; CONDUCTIVITY; TEMPERATURE; PERFORMANCE; NANOPOWDERS; PRECURSORS; ZIRCONIA;
D O I
10.5301/jabfm.5000265
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Background: Gadolinium-doped ceria (GDC) is a promising alternative as a solid electrolyte for intermediate temperature solid oxide fuel cells (ITSOFCs) due to its low operating temperature and its high electrical conductivity. The traditional synthesis processes require extended time for powder preparation. Sol-gel methodology for electrolyte fabrication is more versatile and efficient. Methods: In this work, nanocrystalline ceria powders, with 10 and 20 mol% of gadolinium (Ce0.9Gd0.1O1.95 and Ce0.8Gd0.2O1.9) were synthesized by a modified sol-gel technique, featuring a nitrate-fuel exothermic reaction. GDC tablets were prepared from powders and sintered at 1500 degrees C with a dwell time of 3 hours. The sintered pellets' microstructure (by SEM) and electrical conductivity (by EIS) were evaluated. The powder properties, such as crystalline structure (by XRD), thermal properties (TGA/DTA), particle size and morphology (TEM) and textural properties (BET method) were determined and, in addition, for the first time an accurate chemical structural evolution (FTIR) was studied. Results: Sintered GDC0.8 samples exhibited the maximum theoretical density of 97% and an average grain size of 700 nm. The electrical conductivity vs. temperature showed values ranging from 1.9.10(-2) to 5.5.10(-2) S.cm(-1) at 600 degrees C and 800 degrees C for GDC with 20 mol% of gadolinium. Conclusions: The methodology investigated showed reduced reaction time, a better control of stoichiometry and low cost. Characterization results demonstrated that these materials can be applied in ITSOFCs due to high conductivity, even at 550 degrees C-600 degrees C. The increased conductivity is related to the improved mobility of gadolinium ions in a high-density structure, with nanometric grains.
引用
收藏
页码:E35 / E41
页数:7
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