Chem. J. Chinese Universities ›› 2019, Vol. 40 ›› Issue (5): 988.doi: 10.7503/cjcu20180776

• Physical Chemistry • Previous Articles     Next Articles

Fabrication of 3D Porous Core-shell PdNi@Au Nanocatalyst for Formic Acid Electro-oxidation

LI Jiahui, QIN Menghan, ZHANG Jie, DU Yi, SUN Dongmei, TANG Yawen*()   

  1. Jiangsu Key Laboratory of New Power Batteries, School of Chemistry and Materials Science, Nanjing Normal University, Nanjing 210023, China
  • Received:2018-11-19 Online:2019-05-06 Published:2019-01-09
  • Contact: TANG Yawen E-mail:tangyawen@njnu.edu.cn
  • Supported by:
    † Supported by the National Natural Science Foundation of China(Nos.21376122, 21576139, 21875112)

Abstract:

K2PdCl4 and K2Ni(CN)4 were employed as precursors to fabricate cyanogel, which was then reduced by NaBH4 to prepare 3D porous coral-like PdNi alloy. On the basis of the synthesized PdNi alloy, 3D porous PdNi@Au catalysts with PdNi alloy as inner core and Au layers of different thickness on the surface were synthesized by in situ Galvanic replacement between PdNi alloy and HAuCl4 aqueous solution. X-Ray diffraction(XRD) and transmission electron microscopy(TEM) indicated that the 3D network structure was composed of interconnected nanoparticles with diameter of 7 nm. Energy dispersive X-ray(EDX) line scanning and mapping could declare its typical core-shell structure. Electrochemical measurements demonstrated that the electro-catalytic performance of PdNi@Au catalysts could be affected by the thickness of Au layer. When the content of Au reached a value of 5.6%(molar fraction), PdNi@Au catalyst exhibited the best catalytic performance for formic acid electro-oxidation. In this case, the peak current density of PdNi@Au catalyst was 7.2 times that of commercial Pd black.

Key words: Pd-based catalyst, Galvanic replacement, Formic acid electro-oxidation

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