DOE OSTI · 1767439
Tuning electrochemically driven surface transformation in atomically flat LaNiO 3 thin films for enhanced water electrolysis
Abstract
Structure–activity relationships built on descriptors of bulk and bulk-terminated surfaces are the basis for the rational design of electrocatalysts. However, electrochemically driven surface transformations complicate the identification of such descriptors. In this work, we demonstrate how the as-prepared surface composition of (001)-terminated LaNiO 3 epitaxial thin films dictates the surface transformation and the electrocatalytic activity for the oxygen evolution reaction. Specifically, the Ni termination (in the as-prepared state) is considerably more active than the La termination, with overpotential differences of up to 150 mV. A combined electrochemical, spectroscopic and density-functional theory investigation suggests that this activity trend originates from a thermodynamically stable, disordered NiO 2 surface layer that forms during the operation of Ni-terminated surfaces, which is kinetically inaccessible when starting with a La termination. Our work thus demonstrates the tunability of surface transformation pathways by modifying a single atomic layer at the surface and that active surface phases only develop for select as-synthesized surface terminations.
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Baeumer, Christoph, Li, Jiang, Lu, Qiyang, Liang, Allen Yu-Lun, Jin, Lei, Martins, Henrique Perin, Duchoň, Tomáš, Glöß, Maria, Gericke, Sabrina M., Wohlgemuth, Marcus A., Giesen, Margret, Penn, Emily E., Dittmann, Regina, Gunkel, Felix, Waser, Rainer, Bajdich, Michal, Nemšák, Slavomír, Mefford, J. Tyler, Chueh, William C.. 2021-01-11. Tuning electrochemically driven surface transformation in atomically flat LaNiO 3 thin films for enhanced water electrolysis. https://doi.org/10.1038/s41563-020-00877-1
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