Push-Pull Electronic Effects in Surface-Active Sites Enhance Electrocatalytic Oxygen Evolution on Transition Metal Oxides

Autor/a

Garcés-Pineda, Felipe Andrés

Nguyën, Huu Chuong

Blasco-Ahicart, Marta

García-Tecedor, Miguel

de Fez-Febré, Mabel

Tang, Peng-Yi

Arbiol, Jordi

Giménez, Sixto

Galán-Mascarós, José Ramón

López, Núria

Fecha de publicación

2020-01-29



Resumen

Sustainable electrocatalysis of the oxygen evolution reaction (OER) constitutes a major challenge for the realization of green fuels. Oxides based on Ni and Fe in alkaline media have been proposed to avoid using critical raw materials. However, their ill-defined structures under OER conditions make the identification of key descriptors difficult. Here, we have studied Fe−Ni−Zn spinel oxides, with a well-defined crystal structure, as a platform to obtain general understanding on the key contributions. The OER reaches maximum performance when: (i) Zn is present in the Spinel structure, (ii) very dense, equimolar 1 : 1 : 1 stoichiometry sites appear on the surface as they allow the formation of oxygen vacancies where Zn favors pushing the electronic density that is pulled by the octahedral Fe and tetrahedral Ni redox pair lowering the overpotential. Our work proves cooperative electronic effects on surface active sites as key to design optimum OER electrocatalysts.

Tipo de documento

Artículo
Versión aceptada

Lengua

Inglés

Palabras clave

54

Páginas

1595 p.

Número del acuerdo de la subvención

European Union. Grant Number: 732840

QCM-2018-3-0012

2017 SGR 327

ENE2017-85087-C3

SEV-2017-0706

Documentos

garces-pineda_chem_sus_chem_2021.pdf

3.018Mb

 

Derechos

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