Achieving Efficient Electrocatalytic Oxygen Evolution in Acidic Media on Yttrium Ruthenate Pyrochlore through Cobalt Incorporation

Author:

Han Ning1ORCID,Feng Shihui2,Liang Yi3,Wang Jun4,Zhang Wei1,Guo Xiaolong5,Ma Qianru1,Liu Qiong1,Guo Wei1,Zhou Zhenyu1,Xie Sijie1,Wan Kai1,Jiang Yinzhu6,Vlad Alexandru5,Guo Yuzheng4,Gaigneaux Eric M.5,Zhang Chi3,Fransaer Jan1,Zhang Xuan16ORCID

Affiliation:

1. Department of Materials Engineering KU Leuven Kasteelpark Arenberg 44 3001 Leuven Belgium

2. Department of Materials and Environmental Chemistry Arrhenius Laboratory Stockholm University 10691 Stockholm Sweden

3. School of Applied Physics and Materials Wuyi University Jiangmen 529020 China

4. School of Electrical Engineering and Automation Wuhan University Wuhan 430072 China

5. Institute of Condensed Matter and Nanosciences (IMCN) Université catholique de Louvain Place Louis Pasteur 1. L04.01.09 BE‐1348 Louvain‐la‐Neuve Belgium

6. ZJU‐Hangzhou Global Scientific and Technological Innovation Centre Zhejiang University Hangzhou 311200 China

Abstract

AbstractThe development of electrocatalysts for the oxygen evolution reaction (OER) especially in acidic media remains the major challenge that still requires significant advances, both in material design and mechanistic exploration. In this study, the incorporation of cobalt in Y2‐xCoxRu2O7−δ results in an ultrahigh OER activity because of the charge redistribution at eg orbitals between Ru and Co atoms. The Y1.75Co0.25Ru2O7−δ electrocatalyst exhibits an extremely small overpotential of 275 mV in 0.5 m H2SO4 at the current density of 10 mA cm−2, which is smaller than that of parent Y2Ru2O7−δ (360 mV) and commercial RuO2 (286 mV) catalysts. The systematic investigation of the composition related to OER activity shows that the Co substitution will also bring other effective changes, such as reducing the bandgap, and creating oxygen vacancies, which result in fast OER charge transfer. Meanwhile, the strengthening of the bond hybridization between the d orbitals of metal (Y and Ru) and the 2p orbitals of O will intrinsically enhance the chemical stability. Finally, theoretical calculations indicate that cobalt substitution reduces the theoretical overpotential both through an adsorbate evolution mechanism and a lattice oxygen‐mediated mechanism.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

Fonds Wetenschappelijk Onderzoek

Natural Science Foundation of Hubei Province

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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