Xu Lin, Luo Zhimin, Fan Zhanxi, Zhang Xiao, Tan Chaoliang, Li Hai, Zhang Hua, Xue Can
School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore.
Nanoscale. 2014 Oct 21;6(20):11738-43. doi: 10.1039/c4nr03600j. Epub 2014 Aug 26.
We report the generation of triangular Ag-Pd alloy nanoprisms through a rationally designed synthetic strategy based on silver nanoprisms as sacrificial templates. The galvanic replacement between Ag nanoprisms and H2PdCl4 along with co-reduction of Ag(+)/Pd(2+) is responsible for the formation of final prismatic Ag-Pd alloy nanostructures. Significantly, these Ag-Pd alloy nanoprisms exhibited superior electrocatalytic activity for the oxygen reduction reaction (ORR) as compared with the commercial Pd/C catalyst. Such a high catalytic activity is attributed to not only the alloyed Ag-Pd composition but also the dominant {111} facets of the triangular Ag-Pd nanoprisms. This work demonstrates the rational design of bimetallic alloy nanostructures with control of selective crystal facets that are critical to achieve high catalytic activity for fuel cell systems.
我们报道了通过基于银纳米棱镜作为牺牲模板的合理设计合成策略生成三角形Ag-Pd合金纳米棱镜。银纳米棱镜与H2PdCl4之间的电化学生成以及Ag(+)/Pd(2+)的共还原导致了最终棱柱状Ag-Pd合金纳米结构的形成。值得注意的是,与商业Pd/C催化剂相比,这些Ag-Pd合金纳米棱镜对氧还原反应(ORR)表现出优异的电催化活性。如此高的催化活性不仅归因于合金化的Ag-Pd组成,还归因于三角形Ag-Pd纳米棱镜的主导{111}晶面。这项工作展示了双金属合金纳米结构的合理设计,其中对选择性晶面的控制对于实现燃料电池系统的高催化活性至关重要。