(472d) Accelerated Discovery of Stable and Active Materials for Oxygen Electrocatalysis
AIChE Annual Meeting
2020
2020 Virtual AIChE Annual Meeting
Engineering Sciences and Fundamentals
Electrochemical Advances to Enable Efficient Oxygen, Hydrogen and Water Reactions I
Tuesday, November 17, 2020 - 8:30am to 8:45am
In this work, we use computational Pourbaix diagram to identify acid stable nonâbinary oxide materials by analyzing the aqueous stability of oxides in the Materials Project database[3] at pH = 0 under typical potential ranges of 0.6 â 1.0 V (vs. SHE) and 1.2 â 2.0 V (vs. SHE) for ORR and OER, respectively. Then we performed a systematic high-throughput screening of the ORR and OER activity of these stable materials by determining unique surface terminations and active sites, incorporating surface coverages of the reaction intermediates under reaction conditions, and calculating adsorption free energies of reaction intermediates to predict theoretical ORR limiting potentials and OER overpotentials. Promising candidates were then experimentally synthesized, characterized, and tested for their activity, stability, and selectivity. Finally, on the basis of theoretical and experimental findings, rational catalyst design principles for next-generation oxygen electrocatalysts are established.
References:
[1] Z.W. Seh, J. Kibsgaard, C.F. Dickens, I. Chorkendorff, J.K. Nørskov, T.F. Jaramillo, Combining theory and experiment in electrocatalysis: Insights into materials design, Science 355 (2017) eaad4998
[2] J. Kibsgaard, I. Chorkendorff, Considerations for the scaling-up of water splitting catalysts, Nat. Energy. 4 (2019) 430â433
[3] A. Jain, S.P. Ong, G. Hautier, W. Chen, W.D. Richards, S. Dacek, S. Cholia, D. Gunter, D. Skinner, G. Ceder, K.A. Persson, Commentary: The materials project: A materials genome approach to accelerating materials innovation, APL Mater. 1 (2013) 011002