2019 AIChE Annual Meeting
(353f) Design of Mixed Metal Oxides for Efficient Intermediate Temperature Oxygen Electrocatalysis
Authors
In this work, we demonstrate promising performance for first-series Ruddlesden-Popper (R-P) oxides - with a formula of A2BO4 - as electrocatalysts for oxygen electrocatalysis.2-5 We further provide a clear understanding of the factors governing their structureâactivity relations for surface oxygen exchange, fostering the optimization of their performance. We discuss our efforts toward merging theoretical designed principles and experimental synthetical approaches in developing highly active electrocatalysts for intermediate temperature oxygen electrocatalysis. We demonstrate this via the use of a reverse microemulsion method which allows for nanoengineering of the oxide surface, maximizing the B-site metal sites (responsible for the catalytic activity) exposed to the reactive species. Furthermore, we demonstrate our ability to fine-tune the composition of the B-site in order to regulate the electronic fingerprint of the electrocatalyst surface to achieve optimal electrocatalytic activity. The kinetics of the electrochemical ORR on nanostructured R-P oxides are investigated by means of electrochemical impedance spectroscopy. We identify and show the impact of the nanoengineered R-P oxides on the two main electrochemical processes governing the polarization resistances during ORR: the electron transfer/oxygen vacancy healing, and the oxygen ion transfer through the electrocatalyst/electrolyte interface. Furthermore, we show that the incorporation of optimized nanostructured R-P oxides as SOFC cathode electrocatalysts leads to significant improvement in the cell performance. These findings provide important insights into tuning complex mixed ionic-electronic oxides for enhanced oxygen reduction kinetics in intermediate temperature ceramicâbased fuel cells.
References
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