4.6 Article

Physics-Based Model to Represent Membrane-Electrode Assemblies of Solid-Oxide Fuel Cells Based on Gadolinium-Doped Ceria

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ELECTROCHEMICAL SOC INC
DOI: 10.1149/1945-7111/acfff6

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Fuel Cells-Solid Oxide; High Temperature Materials; Mixed Ionic Electronic Conductors; Doped Ceria; Electrochemical Modeling

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This paper presents a physics-based model for predicting the performance of solid-oxide fuel cells with Ce0.9Gd0.1O2-delta electrolyte membranes. The model considers the thermodynamic and transport properties of GDC10 mobile charged defects and the influence of mixed ionic-electronic conductivity on the performance of the fuel cell. The results show that the competing charge transfer reactions and mixed conductivity affect the cell's open circuit voltages.
This paper reports a physics-based model that predicts membrane-electrode assembly (MEA) performance of solid-oxide fuel cells (SOFCs) with Ce0.9Gd0.1O2-delta (GDC10) electrolyte membranes. The paper derives self-consistent thermodynamic and transport properties for GDC1o mobile charged defects (oxide vacancies and reduced-ceria small polarons) by fitting published measurements of oxygen non-stoichiometry and conductivity over ranges of temperature and O-2 partial pressures. The button-cell model is applied to evaluate how mixed ionic-electronic conductivity influences the performance of an SOFC MEA with a GDC10 electrolyte sandwiched between a porous, composite Ni-GDC10 anode and a porous, composite cathode of Sm0.5Sr0.5CoO3-delta (i.e., SSC) and GDC10. SSC properties are also derived by fitting published conductivity and oxygen non-stoichiometry measurements. Mixed conductivity of GDC10 and competing charge transfer reactions at both electrodes reduce open circuit voltages due to leakage current and buildup of defect concentrations at electrode-electrolyte interfaces. To fit polarization data, the button-cell model includes heterogeneous reaction rates for defect incorporation on the GDC10 surface along with Butler-Volmer expressions derived for competing charge transfer reaction rates from rigorous analyses assuming rate-limiting, elementary charge transfer reactions for each electrode. The calibrated MEA model can support rigorous SOFC modeling with GDC10 electrolytes over the range of conditions within a fully operating cell.(c) 2023 The Author(s). Published on behalf of The Electrochemical Society by IOP Publishing Limited.

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