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Electrochemical Synthesis of Mesoporous CoPt Nanowires for Methanol Oxidation

机译:电化学合成介孔CoPt纳米线用于甲醇氧化

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摘要

A new electrochemical method to synthesize mesoporous nanowires of alloys has been developed. Electrochemical deposition in ionic liquid-in-water (IL/W) microemulsion has been successful to grow mesoporous CoPt nanowires in the interior of polycarbonate membranes. The viscosity of the medium was high, but it did not avoid the entrance of the microemulsion in the interior of the membrane’s channels. The structure of the IL/W microemulsions, with droplets of ionic liquid (4 nm average diameter) dispersed in CoPt aqueous solution, defined the structure of the nanowires, with pores of a few nanometers, because CoPt alloy deposited only from the aqueous component of the microemulsion. The electrodeposition in IL/W microemulsion allows obtaining mesoporous structures in which the small pores must correspond to the size of the droplets of the electrolytic aqueous component of the microemulsion. The IL main phase is like a template for the confined electrodeposition. The comparison of the electrocatalytic behaviours towards methanol oxidation of mesoporous and compact CoPt nanowires of the same composition, demonstrated the porosity of the material. For the same material mass, the CoPt mesoporous nanowires present a surface area 16 times greater than compact ones, and comparable to that observed for commercial carbon-supported platinum nanoparticles.
机译:已经开发了一种新的电化学方法来合成合金的介孔纳米线。离子水包液(IL / W)微乳液中的电化学沉积已成功地在聚碳酸酯膜内部生长了介孔CoPt纳米线。介质的粘度很高,但不能避免微乳液进入膜通道内部。 IL / W微乳液的结构是将离子液体的液滴(平均直径为4 nm)分散在CoPt水溶液中,定义了具有几纳米孔的纳米线的结构,因为CoPt合金仅从CoPt的水溶液中沉积微乳液。 IL / W微乳液中的电沉积允许获得中孔结构,其中小孔必须对应于微乳液的电解水性组分的液滴的尺寸。 IL主相就像是受限电沉积的模板。比较相同组成的中孔和致密CoPt纳米线对甲醇氧化的电催化行为,证明了材料的孔隙率。对于相同的材料质量,CoPt介孔纳米线的表面积是紧凑型表面积的16倍,可与商用碳负载铂纳米粒子观察到的表面积相媲美。

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