International Journal of Hydrogen Energy, Vol.44, No.16, 8467-8478, 2019
Performance and optimization of perovskite-type La1.4Ca0.6CoMnO5+delta cathode for intermediate-temperature solid oxide fuel cells
There has been a considerable interest in improving electrocatalytical activity of doped lanthanum manganite and thermal stability of cobaltite cathodes. In the current work, a perovskite-type oxide La1.4Ca0.6CoMnO5+delta (LCCM), as a combination of manganite and cobaltite perovskites, is developed as a potential cathode for intermediate-temperature solid oxide fuel cells. The LCCM has a monoclinic structure and highly structural stability at RT-900 degrees C. The LCCM exhibits good chemical compatibility and relatively matched thermal expansion coefficient with the La0.9Sr0.1Ga0.8Mg0.2O3-delta (LSGM) and Sm0.2Ce0.8O1.9 (SDC) electrolytes up to 1000 degrees C. The mixed valence states of Co2+/3+ and Mn(3+/4+ )coexist in the LCCM. The LCCM exhibits a typical p-type semiconducting behavior, and the sample sintered at 1300 degrees C possesses the highest conductivity of 223 S cm(-1) at 800 degrees C. The maximum power density of NiO-SDC/SDC/LSGM/LCCM single cell is 445 mW cm(-2) at 800 degrees C. The electrochemical performance, thermal expansion behavior and stability of LCCM are further improved by adding appropriate amounts of SDC. The LCCM-30 wt% SDC composite cathode shows the best electrochemical performance: the area specific resistance is decreased by 68% at 800 degrees C, and the maximum power density is increased by 22%. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
Keywords:Solid oxide fuel cell;Cathode;Stability;Thermal expansion;Electrical conductivity;Electrochemical performance