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C_(60)膜的制备及其特性
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作者 张振龙 《烟台师范学院学报(自然科学版)》 2002年第3期188-191,共4页
在实验基础上 ,详细阐述了碳的同质异构体 C6 0 的 L
关键词 C60膜 LB膜 制备 特性 碳60 同质异构体 电子能级 激发能级 极薄层结构
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Ultra-thin layer structured anodes for highly durable Iow-Pt direct formic acid fuel cells 被引量:4
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作者 RongyueWang Jianguo Liu +7 位作者 Pan Liu Xuanxuan Bi Xiuling Yan Wenxin Wang Yifei Meng Xingbo Ge Mingwei Chen Yi Ding 《Nano Research》 SCIE EI CAS CSCD 2014年第11期1569-1580,共12页
Direct formic acid fuel cells (DFAFCs) allow highly efficient low temperature conversion of chemical energy into electricity and are expected to play a vital role in our future sustainable society. However, the mass... Direct formic acid fuel cells (DFAFCs) allow highly efficient low temperature conversion of chemical energy into electricity and are expected to play a vital role in our future sustainable society. However, the massive precious metal usage in current membrane electrode assembly (MEA) technology greatly inhibits their actual applications. Here we demonstrate a new type of anode constructed by confining highly active nanoengineered catalysts into an ultra-thin catalyst layer with thickness around 100 nm. Specifically, an atomic layer of platinum is first deposited onto nanoporous gold (NPG) leaf to achieve high utilization of Pt and easy accessibility of both reactants and electrons to active sites. These NPG-Pt core/shell nanostructures are further decorated by a sub-monolayer of Bi to create highly active reaction sites for formic acid electro-oxidation. Thus obtained layer-structured NPG-Pt-Bi thin films allow a dramatic decrease in Pt usage down to 3 ~tg.cm-2, while maintaining very high electrode activity and power performance at sufficiently low overall precious metal loading. Moreover, these electrode materials show superior durability during half-year test in actual DFAFCs, with remarkable resistance to common impurities in formic acid, which together imply their great potential in applications in actual devices. 展开更多
关键词 direct formic acid fuel cells low-Pt loading core/shell structures nanoporous gold DEALLOYING
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