Although solid oxide fuel cells (SOFCs) provide clean and efficient electricity generation, high operating temperatures (T > 800 degrees C) limit their widespread use. Lowering operating temperatures (600 degrees C < T < 800 degrees C) requires developing next-generation mixed ion-electron conducting (MIEC) cathodes that permit facile oxygen transport. One promising MIEC material, La1-xSrxCo1-yFeyO3 (LSCF), can operate at intermediate temperatures, has a longer cell lifetime, and permits less expensive interconnect materials. However, the road to optimization of LSCF compositions for SOFC applications would benefit from fundamental, atomic-scale insight into how local chemical changes affect its oxygen ion conductivity. We provide this insight using ab initio density functional theory plus U (DFT+U) calculations to analyze the factors governing oxygen transport in the LSCF parent material LaCoO3. We show that oxygen diffusion in LaCoO3 depends strongly on the spin state of the Co3+ ions: in particular, low spin Co3+ promotes higher oxygen vacancy concentrations than other spin states. We also predict that different spin states of Co3+ significantly affect the oxygen ion migration barrier. Through electronic structure analysis, we uncover the fundamental details which govern oxygen diffusivity in LaCoO3.
机构:
Univ Illinois, Dept Phys, Chicago, IL 60680 USA
Argonne Natl Lab, Mat Sci Div, 9700 S Cass Ave, Argonne, IL 60439 USAUniv Illinois, Dept Phys, Chicago, IL 60680 USA
Park, Hyowon
Nanguneri, Ravindra
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Univ Illinois, Dept Phys, Chicago, IL 60680 USA
Brown Univ, Dept Chem, Providence, RI 02912 USAUniv Illinois, Dept Phys, Chicago, IL 60680 USA
Nanguneri, Ravindra
Ngo, Anh T.
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Argonne Natl Lab, Mat Sci Div, 9700 S Cass Ave, Argonne, IL 60439 USAUniv Illinois, Dept Phys, Chicago, IL 60680 USA