Synergistic Ni−W Dimer Sites Induced Stable Compressive Strain for Boosting the Performance of Pt as Electrocatalyst for the Oxygen Reduction Reaction

Author:

Yao Xiaozhang1,Song Zhongxin2,Yao Xue3,Guan Yi1,Hamada Natalie4,Zhang Jingyan1,Huo Ziwei1,Zhang Lei2ORCID,Singh Chandra Veer3ORCID,Sun Xueliang15ORCID

Affiliation:

1. Department of Mechanical and Materials Engineering University of Western Ontario London, ON N6 A 5B9 Canada

2. College of Chemistry and Environmental Engineering Shenzhen University Shenzhen 518071 China

3. Department of Materials Science and Engineering University of Toronto Toronto, ON M5S 3E4 Canada

4. Canadian Centre for Electron Microscopy Hamilton, ON L8S 4M1 Canada

5. Eastern Institute for Advanced Study Eastern Institute of Technology Ningbo, Zhejiang 3150200 China

Abstract

AbstractAlloying Pt catalysts with transition metal elements is an effective pathway to enhance the performance of oxygen reduction reaction (ORR), but often accompanied with severe metal dissolution issue, resulting in poor stability of alloy catalysts. Here, instead of forming traditional alloy structure, we modify Pt surface with a novel Ni−W dimer structure by the atomic layer deposition (ALD) technique. The obtained NiW@PtC catalyst exhibits superior ORR performance both in liquid half‐cell and practical fuel cell compared with initial Pt/C. It is discovered that strong synergistic Ni−W dimer structure arising from short atomic distance induced a stable compressive strain on the Pt surface, thus boosting Pt catalytic performance. This surface modification by synergistic dimer sites offers an effective strategy in tailoring Pt with excellent activity and stability, which provides a significant perspective in boosting the performance of commercial Pt catalyst modified with polymetallic atom sites.

Publisher

Wiley

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