Nanoparticulate WN/Ni3C Coupling in Ceramic Coatings for Boosted Urea Electro‐Oxidation

Author:

Feng Yihan123,Ran Nian23,Wang Xunlu23,Liu Qiunan4,Wang Jiacheng1235ORCID,Liu Lijia6,Suenaga Kazu4,Zhong Wenwu1,Ma Ruguang7,Liu Jianjun23

Affiliation:

1. School of Materials Science and Engineering Taizhou University Taizhou Zhejiang 318000 China

2. State Key Lab of High Performance Ceramics and Superfine Microstructure Shanghai Institute of Ceramics Chinese Academy of Sciences Shanghai 201899 China

3. Center of Materials Science and Optoelectronics Engineering University of Chinese Academy of Sciences Beijing 100049 China

4. SANKEN Osaka University Ibaraki 567‐0047 Japan

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

6. Department of Chemistry Western University 1151 Richmond Street London ON N6A5B7 Canada

7. School of Materials Science and Engineering Suzhou University of Science and Technology 99 Xuefu Road Suzhou 215009 China

Abstract

AbstractUrea electrolysis can convert urea from urea‐rich wastewater to hydrogen for environmental protection and sustainable energy production. However, the sluggish kinetics of urea oxidation reaction (UOR) requires valence‐variable sites that are generally active at high anodic overpotentials. Herein, a robust ceramic coating is constructed with coupled tungsten nitride (WN)/nickel carbide (Ni3C) nanoparticles to achieve valence‐stable catalytic sites with outstanding UOR performance. Various characterization results indicate strong interfacial electron transfer from WN to Ni3C in coupled nanoparticles, which enables reservation of Ni2+ sites without self‐oxidation during UOR, quite distinct from the kinetically slow Ni3+OOH‐catalyzed UOR pathway. Theoretical calculations show that the coupled effect in WN/Ni3C leads to enhanced electron transfer from catalytic sites to adsorbed urea, and W sites are thermodynamically favorable for UOR. This efficiently lowers the barrier of rate‐determining step (RDS: *CO‐N2*CO·OH), thus enabling fast UOR kinetics and a low potential of 1.336 V at 100 mA cm−2, which identifies this ceramic coating as one of the best UOR electrocatalysts. This work opens a new avenue for design of stable and active sites in ceramics coatings toward advanced electrocatalytic applications.

Funder

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Program of Shanghai Academic Research Leader

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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