Understanding surface charge effects in electrocatalysis. Part 2: Hydrogen peroxide reactions at platinum

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Título: Understanding surface charge effects in electrocatalysis. Part 2: Hydrogen peroxide reactions at platinum
Autor/es: Huang, Jun | Climent, Victor | Groß, Axel | Feliu, Juan M.
Grupo/s de investigación o GITE: Electroquímica de Superficies
Centro, Departamento o Servicio: Universidad de Alicante. Departamento de Química Física | Universidad de Alicante. Instituto Universitario de Electroquímica
Palabras clave: Electrocatalysis | Surface charge effect | Hydrogen peroxide reaction | Pt(111)-aqueous solution interface | Microkinetic-double-layer model
Fecha de publicación: 20-oct-2022
Editor: Elsevier
Cita bibliográfica: Chinese Journal of Catalysis. 2022, 43(11): 2837-2849. https://doi.org/10.1016/S1872-2067(22)64138-X
Resumen: Electrocatalytic activity is influenced by the surface charge on the solid catalyst. Conventionally, our attention has been focused on how the surface charge shapes the electric potential and concentration of ionic reactant(s) in the local reaction zone. Taking H2O2 redox reactions at Pt(111) as a model system, we reveal a peculiar surface charge effect using ab initio molecular dynamics simulations of electrified Pt(111)-water interfaces. In this scenario, the negative surface charge on Pt(111) repels the O–O bond of the reactant (H2O2) farther away from the electrode surface. This leads to a higher activation barrier for breaking the O–O bond. Incorporating this microscopic mechanism into a microkinetic-double-layer model, we are able to semi-quantitatively interpret the pH-dependent activity of H2O2 redox reactions at Pt(111), especially the anomalously suppressed activity of H2O2 reduction with decreasing electrode potential. The relevance of the present surface charge effect is also examined in wider scenarios with different electrolyte cations, solution pHs, crystal facets of the catalyst, and model parameters. In contrast with previous mechanisms focusing on how surface charge influences the local reaction condition at a fixed reaction plane, the present work gives an example in which the location of the reaction plane is adjusted by the surface charge.
Patrocinador/es: This work was supported by the National Natural Science Foundation of China (21802170). J.H. acknowledges the financial support for a Europe Research Stay at Alicante University from the Alexander von Humboldt Foundation, and the National Natural Science Foundation of China under the grant number of 21802170. Computer time provided by the state of Baden-Württemberg through bwHPC and the German Research Foundation (DFG) through grant no INST 40/575-1 FUGG (JUSTUS 2 cluster) are gratefully acknowledged. This work contributes to the research performed at CELEST (Center for Electrochemical Energy Storage Ulm-Karlsruhe). J.M.F and V.C. acknowledge financial support from Ministerio de Ciencia e Innovación (Project PID2019-105653GB-100) and Generalitat Valenciana (Project PROMETEO/2020/063).
URI: http://hdl.handle.net/10045/128865
ISSN: 1872-2067
DOI: 10.1016/S1872-2067(22)64138-X
Idioma: eng
Tipo: info:eu-repo/semantics/article
Derechos: © 2022 Dalian Institute of Chemical Physics, the Chinese Academy of Sciences. Published by Elsevier B.V.
Revisión científica: si
Versión del editor: https://doi.org/10.1016/S1872-2067(22)64138-X
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