电催化剂
气凝胶
材料科学
纳米线
催化作用
纳米技术
电化学
多孔性
耐久性
纳米结构
燃料电池
化学工程
复合材料
电极
化学
有机化学
物理化学
工程类
作者
Wei Liu,Danny Haubold,Bogdan Rutkowski,Martin Oschatz,René Hübner,Matthias Werheid,Christoph Ziegler,Luisa Sonntag,Shaohua Liu,Zhikun Zheng,Anne‐Kristin Herrmann,Dorin Geiger,Bürgehan Terlan,Thomas Gemming,Lars Borchardt,Stefan Kaskel,A. Czyrska‐Filemonowicz,Alexander Eychmüller
标识
DOI:10.1021/acs.chemmater.6b01394
摘要
Developing electrocatalysts with low cost, high activity, and good durability is urgently demanded for the wide commercialization of fuel cells. By taking advantage of nanostructure engineering, we fabricated PtAg nanotubular aerogels (NTAGs) with high electrocatalytic activity and good durability via a simple galvanic replacement reaction between the in situ spontaneously gelated Ag hydrogel and the Pt precursor. The PtAg NTAGs have hierarchical porous network features with primary networks and pores from the interconnected nanotubes of the aerogel and secondary networks and pores from the interconnected thin nanowires on the nanotube surface, and they show very high porosities and large specific surface areas. Due to the unique structure, the PtAg NTAGs exhibit greatly enhanced electrocatalytic activity toward formic acid oxidation, reaching 19 times higher metal-based mass current density as compared to the commercial Pt black. Furthermore, the PtAg NTAGs show outstanding structural stability and electrochemical durability during the electrocatalysis. Noble metal-based NTAGs are promising candidates for applications in electrocatalysis not only for fuel cells, but also for other energy-related systems.
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