A Solid‐Solution with Asymmetric Ni‐O‐Cr Sites for Boosting Protonation toward Anodic Oxidation

Author:

Feng Yihan12,Wang Xunlu2,Ma Junqing2,Wang Nan1,Liu Qiunan3,Suenaga Kazu3,Chen Wei4,Zhang Jitang1,Zhou Yin5,Wang Jiacheng126ORCID

Affiliation:

1. Zhejiang Key Laboratory for Island Green Energy and New Materials Institute of Electrochemistry School of Materials Science and Engineering Taizhou University Taizhou Zhejiang 318000 China

2. State Key Laboratory of High‐Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences Shanghai 200050 China

3. The Institute of Scientific and Industrial Research (ISIR‐SANKEN) Osaka University Osaka 567‐0047 Japan

4. Department of Materials Design and Innovation University at Buffalo The State University of New York Buffalo NY 14260 USA

5. School of Mechanical and Electrical Engineering Taizhou University Taizhou Jiangsu 225300 China

6. Hebei Provincial Key Laboratory of Inorganic Nonmetallic Materials College of Materials Science and Engineering North China University of Science and Technology Tangshan 063210 China

Abstract

AbstractReplacing the slow protonation process of oxygen evolution reaction (OER) with the fast protonation of alcohol electro‐oxidation can decrease the driving potentials, thus improving overall efficiency of electrochemical devices. However, the formation of effective catalytic sites for alcohol oxidation remains challenging in accelerating protonation to inhibit metal leaching and improve catalyst stability. Herein, asymmetric Ni‐O‐Cr sites are constructed by alloying Cr into the NiO matrix to optimize coordination environments, showing significantly enhanced stability during alcohol electro‐oxidation. The asymmetric Ni‐O‐Cr can maintain constant valence states of Cr and Ni during alcohol oxidation, efficiently suppressing metal dissolution even at high oxidation potentials. In situ electrochemical characterizations combined with theoretical calculations indicate that asymmetric Ni‐O‐Cr can improve adsorption and activation of OH* and alcohol molecules compared to pure NiO, thus increasing anodic kinetics. The theoretical results also indicate that the smaller gap of Ni 3d‐O 2p in asymmetric Ni‐O‐Cr strengthens charge transfer, leading to fast protonation of catalytic sites with enhanced stability. This work gives insights into boosting anodic protonation using asymmetric sites‐enriched solid‐solution electrocatalysts.

Funder

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Publisher

Wiley

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