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Gold nanoparticle-polymer nanocomposites synthesized by room temperature atmospheric pressure plasma and their potential for fuel cell electrocatalytic application

机译:室温大气压等离子体合成的金纳米粒子-聚合物纳米复合材料及其在燃料电池电催化中的应用潜力

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摘要

Conductive polymers have been increasingly used as fuel cell catalyst support due to their electrical conductivity, large surface areas and stability. The incorporation of metal nanoparticles into a polymer matrix can effectively increase the specific surface area of these materials and hence improve the catalytic efficiency. In this work, a nanoparticle loaded conductive polymer nanocomposite was obtained by a one-step synthesis approach based on room temperature direct current plasmaliquid interaction. Gold nanoparticles were directly synthesized from HAuCl4 precursor in poly(3,4-ethylenedioxythiophene) polystyrene sulfonate (PEDOT: PSS). The resulting AuNPs/PEDOT: PSS nanocomposites were subsequently characterized under a practical alkaline direct ethanol fuel cell operation condition for its potential application as an electrocatalyst. Results show that AuNPs sizes within the PEDOT: PSS matrix are dependent on the plasma treatment time and precursor concentration, which in turn affect the nanocomposites electrical conductivity and their catalytic performance. Under certain synthesis conditions, unique nanoscale AuNPs/PEDOT: PSS core-shell structures could also be produced, indicating the interaction at the AuNPs/polymer interface. The enhanced catalytic activity shown by AuNPs/PEDOT: PSS has been attributed to the effective electron transfer and reactive species diffusion through the porous polymer network, as well as the synergistic interfacial interaction at the metal/polymer and metal/metal interfaces.
机译:导电聚合物由于其导电性,大表面积和稳定性而已越来越多地用作燃料电池催化剂载体。将金属纳米颗粒结合到聚合物基质中可以有效地增加这些材料的比表面积,从而提高催化效率。在这项工作中,基于室温直流等离子体-液体相互作用的一步合成方法获得了负载纳米粒子的导电聚合物纳米复合材料。金纳米颗粒是由HAuCl4前体直接在聚(3,4-乙撑二氧噻吩)聚苯乙烯磺酸盐(PEDOT:PSS)中合成的。随后,在实际的碱性直接乙醇燃料电池运行条件下,对所得的AuNPs / PEDOT:PSS纳米复合材料进行了表征,以潜在地用作电催化剂。结果表明,PEDOT:PSS基质中的AuNPs大小取决于等离子体处理时间和前体浓度,进而影响纳米复合材料的电导率及其催化性能。在某些合成条件下,还可以产生独特的纳米级AuNPs / PEDOT:PSS核壳结构,表明AuNPs /聚合物界面处的相互作用。 AuNPs / PEDOT:PSS显示出增强的催化活性,这归因于有效的电子转移和反应性物质通过多孔聚合物网络的扩散,以及金属/聚合物和金属/金属界面上的协同界面相互作用。

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