Issue 39, 2020

Au-Doped intermetallic Pd3Pb wavy nanowires as highly efficient electrocatalysts toward the oxygen reduction reaction

Abstract

Developing high-performance non-Pt electrocatalysts toward the oxygen reduction reaction (ORR) is highly desirable but still challenging for industrial application in fuel cells. Here, we report a facile approach for the synthesis of Au-doped Pd3Pb wavy nanowires (WNWs) with different amounts of Au. We found that the oriented attachment dictated the formation of the WNWs. Such WNWs with several attractive features including a high density of defects, anisotropic one-dimensional nanostructures, ordered intermetallic structures, and Au doping exhibited substantially enhanced catalytic properties in terms of activity and durability towards the ORR in alkaline media compared to commercial Pt/C. Interestingly, the Au doped Pd3Pb WNWs showed a volcano-like relationship in ORR activity as a function of the amount of Au with the 2% Au-doped Pd3Pb WNWs being the best ORR electrocatalysts. Specifically, the 2% Au doped Pd3Pb WNWs achieved the highest mass activity (0.75 mA μg−1) at 0.9 V, which was 1.25 and 7.5 times higher than that of the Pd3Pb WNWs and commercial Pt/C, respectively. More importantly, the 2% Au-doped Pd3Pb WNWs displayed higher durability with only 22.7% loss in mass activity after 10 000 cycles compared to the commercial Pt/C (38% loss in mass activity) due to their chemically stable intermetallic structures and the effect of Au doping.

Graphical abstract: Au-Doped intermetallic Pd3Pb wavy nanowires as highly efficient electrocatalysts toward the oxygen reduction reaction

Supplementary files

Article information

Article type
Paper
Submitted
01 Jul 2020
Accepted
05 Aug 2020
First published
08 Aug 2020

CrystEngComm, 2020,22, 6478-6484

Au-Doped intermetallic Pd3Pb wavy nanowires as highly efficient electrocatalysts toward the oxygen reduction reaction

S. Luo, D. Xu, J. Li, Y. Huang, L. Li, X. Li, X. Wu, M. Gao, D. Yang and H. Zhang, CrystEngComm, 2020, 22, 6478 DOI: 10.1039/D0CE00944J

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