Bulk-independent surface oxide composition controls the electrochemical performance of high-entropy alloys.

Autor: Kogler M; Institute of Applied Physics, Vienna University of Technology 1040 Vienna Austria markus.valtiner@tuwien.ac.at christian.pichler@cest.at.; Center for Electrochemical Surface Technology GmbH 2700 Wr. Neustadt Austria., Olgiati M; Institute of Applied Physics, Vienna University of Technology 1040 Vienna Austria markus.valtiner@tuwien.ac.at christian.pichler@cest.at.; Center for Electrochemical Surface Technology GmbH 2700 Wr. Neustadt Austria., Ostermann M; Center for Electrochemical Surface Technology GmbH 2700 Wr. Neustadt Austria., Rachle P; Institute of Applied Physics, Vienna University of Technology 1040 Vienna Austria markus.valtiner@tuwien.ac.at christian.pichler@cest.at., Gahlawat S; Institute of Applied Physics, Vienna University of Technology 1040 Vienna Austria markus.valtiner@tuwien.ac.at christian.pichler@cest.at.; Center for Electrochemical Surface Technology GmbH 2700 Wr. Neustadt Austria., Valtiner M; Institute of Applied Physics, Vienna University of Technology 1040 Vienna Austria markus.valtiner@tuwien.ac.at christian.pichler@cest.at.; Center for Electrochemical Surface Technology GmbH 2700 Wr. Neustadt Austria., Pichler CM; Institute of Applied Physics, Vienna University of Technology 1040 Vienna Austria markus.valtiner@tuwien.ac.at christian.pichler@cest.at.; Center for Electrochemical Surface Technology GmbH 2700 Wr. Neustadt Austria.
Jazyk: angličtina
Zdroj: Journal of materials chemistry. A [J Mater Chem A Mater] 2024 Jul 30; Vol. 12 (34), pp. 22565-22575. Date of Electronic Publication: 2024 Jul 30 (Print Publication: 2024).
DOI: 10.1039/d4ta03619k
Abstrakt: Multi-element alloys and high-entropy alloys show promising electrocatalytic behavior for water splitting and other catalytic reactions, due to their highly tunable composition. While preparation and synthesis of these materials are thoroughly investigated, the true reactive surface composition is still not well understood, as it may significantly differ from the bulk composition. Precise knowledge and understanding of resulting surface composition is crucial for effective control of the electrocatalytic performance. In this work, low energy ion scattering spectroscopy was applied to determine the surface oxide composition of a series of Ni-based multi-metallic alloys with Mn, Fe, Co, and Cr under alkaline, neutral and acidic conditions. The composition of the surface oxide was investigated with sub-nanometer depth resolution. In electrochemical tests, good catalytic activity was found for the oxygen evolution reaction, although a strong dependence on the selected reaction conditions was observed. The surface composition under OER conditions deviates significantly from the bulk composition. No significant benefit of high entropy alloying compared with binary or ternary alloys concerning catalytic OER performance was found.
Competing Interests: There are no conflicts to declare.
(This journal is © The Royal Society of Chemistry.)
Databáze: MEDLINE