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An Investigation of LSF-YSZ Conductive Scaffolds for Infiltrated SOFC Cathodes
Author(s) -
Yuan Cheng,
Tae-Sik Oh,
Rachel Wilson,
Raymond J. Gorte,
John M. Vohs
Publication year - 2017
Publication title -
journal of the electrochemical society
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.258
H-Index - 271
eISSN - 1945-7111
pISSN - 0013-4651
DOI - 10.1149/2.0531706jes
Subject(s) - yttria stabilized zirconia , materials science , cathode , conductivity , electrolyte , electrical conductor , cubic zirconia , perovskite (structure) , composite material , calcination , doping , ionic conductivity , porosity , infiltration (hvac) , chemical engineering , ceramic , electrode , optoelectronics , chemistry , catalysis , biochemistry , engineering
Porous compostites of Sr-doped LaFeO3 (LSF and yttria-stabilized zirconia (YSZ) were investigated as conductive scaffolds for infiltrated SOFC cathodes with the goal of producing scaffolds for which only a few perovskite infiltration steps are required to achieve sufficient conductivity. While no new phases form when LSF-YSZ composites are calcined to 1623 K, shifts in the lattice parameters indicate Zr can enter the perovskite phase. Measurements on dense, LSF-YSZ composites show that the level of Zr doping depends on the Sr:La ration. Because conductivity of undoped LSF increases with Sr content while both the iconic and electronic conductivities of Zr-doped LSF decrease with the level of Zr in the perovskite phase, there is an optimum initial Sr content corresponding to La0.9Sr0.1FeO3 (LSF91). Although schaffolds made with 100% LSF had a higher conductivity then scaffolds made with 50:50 LSF-YSZ mixtures, the 50:50 mixture provides the optimal interfacial structure with the electrolyte and sufficient conductivity, providing the best cathode performance upon infiltration of La0.6Sr0.4Co0.2Fe0.8O3 (LSCF).

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