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首页> 外文期刊>Applied Surface Science >Enhanced catalytic activity of solid and hollow platinum-cobalt nanoparticles towards reduction of 4-nitrophenol
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Enhanced catalytic activity of solid and hollow platinum-cobalt nanoparticles towards reduction of 4-nitrophenol

机译:固体和空心铂-钴纳米颗粒对4-硝基苯酚还原反应的催化活性增强

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Previous investigations of hollow platinum nanoparticles have shown that such nanostructures are more active catalysts than their solid counterparts towards the following electrochemical reactions: reduction of oxygen, evolution of hydrogen, and oxidation of borohydride, methanol and formic acid. In this work we show that synthesised using standard galvanic replacement reaction (with Co templates) hollow platinum nanoparticles exhibit enhanced catalytic activity also towards reduction of 4-nitrophenol by sodium borohydride in water. Unlike in the case of procedures involving hollow platinum catalysts employed so far to carry out this reaction it is not necessary to couple analysed platinum nanoparticles to the surface of an electrode. Simplification of the analyzed reaction may eliminate same experimental errors. We found that the enhanced catalytic activity of hollow Pt nanoparticles is not only connected with generally observed larger surface area of hollow nanostructures, but is also due to the contamination of formed hollow nanostructures with cobalt, from which sacrificial templates used in the synthesis of hollow Pt nanostrustures have been formed. Because using sacrificial templates is a typical method of synthesis of hollow metal nanostructures, formed hollow nanoparticles are probably often contaminated, which may significantly influence their catalytic activity. (C) 2016 Elsevier B.V. All rights reserved.
机译:以前对空心铂纳米粒子的研究表明,在以下电化学反应中,此类纳米结构比固态结构的催化剂更具活性:氧的还原,氢的释放以及硼氢化物,甲醇和甲酸的氧化。在这项工作中,我们证明了使用标准电置换反应(带有Co模板)合成的空心铂纳米粒子还表现出增强的催化活性,该活性也对水中的硼氢化钠还原4-硝基苯酚有帮助。到目前为止,与涉及中空铂催化剂的程序进行反应不同,该方法不必将分析的铂纳米颗粒偶联至电极表面。分析反应的简化可以消除相同的实验错误。我们发现中空Pt纳米颗粒的增强的催化活性不仅与通常观察到的中空纳米结构的较大表面积有关,而且还归因于钴对形成的中空纳米结构的污染,从中牺牲模板可用于合成中空Pt纳米信任已经形成。因为使用牺牲模板是中空金属纳米结构合成的典型方法,所以形成的中空纳米颗粒可能经常受到污染,这可能会大大影响其催化活性。 (C)2016 Elsevier B.V.保留所有权利。

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