首页> 外文期刊>Journal of power sources >Screening of electrocatalysts for direct ammonia fuel cell: Ammonia oxidation on PtMe (Me: Ir, Rh, Pd, Ru) and preferentially oriented Pt(100) nanoparticles
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Screening of electrocatalysts for direct ammonia fuel cell: Ammonia oxidation on PtMe (Me: Ir, Rh, Pd, Ru) and preferentially oriented Pt(100) nanoparticles

机译:直接氨燃料电池的电催化剂的筛选:PtMe(Me:Ir,Rh,Pd,Ru)和优先取向的Pt(100)纳米颗粒上的氨氧化

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Ammonia has attracted attention as a possible fuel for direct fuel cells since it is easy to handle and to transport as liquid or as concentrated aqueous solution. However, on noble metal electrodes ammonia oxidation is a sluggish reaction and the electrocatalyst needs to be improved for developing efficient ammonia fuel cells. In this work, ammonia electrooxidation reaction on 3-4-nm bimetallic PtMe (Ir, Rh, Pd, Ru) and on preferentially oriented Pt(100) nanoparticles is reported. PtMe nanoparticles have been prepared by using water-in-oil microemulsions to obtain a narrow size distribution whereas preferentially oriented Pt nanoparticles have been prepared through colloidal routes. Among all the bimetallic samples tested, only Pt_(75)Ir_(25) and Pt_(75)Rh_(25) nanoparticles show, at the low potential range, an enhancement of the oxidation density current with respect to the behaviour found for pure platinum nanoparticles prepared by the same method. In addition, two Pt(100) preferentially oriented nanoparticles of different particle size (4 and 9 nm) have been also studied. These oriented nanoparticles show higher current densities than polycrystalline Pt nanoparticles due to the sensitivity of ammonia oxidation toward the presence of surface sites with square symmetry. The reactivity of the different 4-nm nanoparticles parallels well with that expected from bulk PtMe alloys and Pt single crystal electrodes.
机译:氨作为直接燃料电池的一种可能的燃料已经引起了人们的注意,因为它易于处理和作为液体或浓水溶液运输。然而,在贵金属电极上,氨氧化是缓慢的反应,并且需要改进电催化剂以开发有效的氨燃料电池。在这项工作中,报道了在3-4-nm双金属PtMe(Ir,Rh,Pd,Ru)和优先取向的Pt(100)纳米颗粒上进行氨电氧化反应。通过使用油包水型微乳来获得窄尺寸分布,可以制备PtMe纳米颗粒,而通过胶体途径可以制备优先取向的Pt纳米颗粒。在所有测试的双金属样品中,只有Pt_(75)Ir_(25)和Pt_(75)Rh_(25)纳米颗粒在低电势范围内显示出相对于纯铂行为而言的氧化密度电流增强用相同的方法制备纳米颗粒。此外,还研究了两种具有不同粒径(4和9 nm)的Pt(100)优先取向的纳米颗粒。由于氨氧化对具有方形对称性的表面位点的敏感性,因此这些取向的纳米粒子显示出比多晶Pt纳米粒子更高的电流密度。不同的4 nm纳米颗粒的反应性与块状PtMe合金和Pt单晶电极的反应性非常相似。

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