Influence of Crystallographic Structure and Metal Vacancies on the Oxygen Evolution Reaction Performance of Ni‐based Layered Hydroxides**

Author:

Sanchis‐Gual Roger1,Jaramillo‐Hernández Camilo1,Hunt Diego2,Seijas‐Da Silva Álvaro1,Mizrahi Martín34,Marini Carlo5,Oestreicher Víctor1,Abellán Gonzalo1ORCID

Affiliation:

1. Instituto de Ciencia Molecular (ICMol) Universidad de Valencia Catedrático José Beltrán 2 46980 Paterna Valencia Spain

2. Departamento de Física de la Materia Condensada GiyA Instituto de Nanociencia y Nanotecnología CNEA-CAC-CONICET Av. Gral. Paz, 1650, San Martín Buenos Aires Argentina

3. Instituto de Investigaciones Fisicoquímicas Técnicas y Aplicadas (INIFTA) Departamento de Química, Facultad de Ciencias Exactas Universidad Nacional de La Plata CCT La Plata- CONICET. Diagonal 113 y 64 1900 La Plata Argentina

4. Facultad de Ingeniería Universidad Nacional de La Plata Calle 1 esq. 47 1900 La Plata Argentina

5. CELLS-ALBA Synchrotron Cerdanyola del Vallès 08290 Barcelona Spain

Abstract

AbstractNickel‐based layered hydroxides (LHs) are a family of efficient electrocatalysts for the alkaline oxygen evolution reaction (OER). Nevertheless, fundamental aspects such as the influence of the crystalline structure and the role of lattice distortion of the catalytic sites remain poorly understood and typically muddled. Herein, we carried out a comprehensive investigation on ɑ‐LH, β‐LH and layered double hydroxide (LDH) phases by means of structural, spectroscopical, in‐silico and electrochemical studies, which suggest the key aspect exerted by Ni‐vacancies in the ɑ‐LH structure. Density functional theory (DFT) calculations and X‐ray absorption spectroscopy (XAS) confirm that the presence of Ni‐vacancies produces acute distortions of the electroactive Ni sites (reflected as the shortening of the Ni−O distances and changes in the O−Ni−O angles), triggering the appearance of Ni localised electronic states on the Fermi level, reducing the Egap, and consequently, increasing the reactivity of the electroactive sites in the ɑ‐LH structure. Furthermore, post‐mortem Raman and XAS measurements unveil its transformation into a highly reactive oxyhydroxide‐like phase that remains stable under ambient conditions. Hence, this work pinpoints the critical role of the crystalline structure as well as the electronic properties of LH structures on their inherent electrochemical reactivity towards OER catalysis. We envision Ni‐based ɑ‐LH as a perfect platform for hosting trivalent cations, closing the gap toward the next generation of benchmark efficient earth‐abundant electrocatalysts.

Funder

H2020 European Research Council

Ministerio de Ciencia e Innovación

Conselleria de Cultura, Educación y Ciencia, Generalitat Valenciana

Ministerio de Universidades

Universitat de València

Publisher

Wiley

Subject

General Chemistry,Catalysis,Organic Chemistry

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