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Towards a highly-efficient fuel-cell catalyst: optimization of Pt particle size, supports and surface-oxygen group concentration

机译:迈向高效燃料电池催化剂:优化Pt粒径,载体和表面氧基团浓度

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In the present work, methanol oxidation reaction was investigated on Pt particles of various diameters on carbon-nanofibers and carbon-black supports with different surface-oxygen concentrations, aiming for a better understanding of the relationship between the catalyst properties and the electrochemical performance. The pre-synthesized Pt nanoparticles in ethylene glycol, prepared by the polyol method without using any capping agents, were deposited on different carbon supports. Removal of oxygen-groups from the carbon supports had profound positive effects on not only the Pt dispersion but also the specific activity. The edge structures on the stacked graphene sheets in the platelet carbon-nanofibers provided a strong interaction with the Pt particles, significantly reconstructing them in the process. Such reconstruction resulted in the formation of more plated Pt particles on the CNF than on the carbon-black and exposure of more Pt atoms with relatively high co-ordination numbers, and thereby higher specific activity. Owing to the combined advantages of optimum Pt particle diameter, an oxygen-free surface and the unique properties of CNFs, Pt supported on heat-treated CNFs exhibited a higher mass activity twice of that of its commercial counterpart.
机译:在本工作中,研究了在具有不同表面氧浓度的碳纳米纤维和炭黑载体上,对各种直径的Pt颗粒进行甲醇氧化反应,目的是更好地理解催化剂性能与电化学性能之间的关系。在不使用任何封端剂的情况下通过多元醇方法制备的乙二醇中预合成的Pt纳米颗粒沉积在不同的碳载体上。从碳载体上除去氧基团不仅对Pt分散而且对比活性都具有深远的积极影响。血小板碳纳米纤维中堆叠的石墨烯片上的边缘结构提供了与Pt颗粒的强相互作用,从而在此过程中显着地重建了它们。这种重构导致在CNF上形成的镀Pt颗粒比在炭黑上形成更多的Pt颗粒,并且暴露出更多具有相对高配位数的Pt原子,从而具有更高的比活性。由于具有最佳的Pt粒径,无氧表面和CNF的独特性能的综合优势,负载在热处理过的CNF上的Pt的质量活性是其商业活性的两倍。

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