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首页> 外文期刊>Angewandte Chemie >Enhanced Electrocatalytic Oxygen Evolution in Au-Fe Nanoalloys
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Enhanced Electrocatalytic Oxygen Evolution in Au-Fe Nanoalloys

机译:Au-Fe Nanooloys增强的电催化氧气速度

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摘要

Oxygen evolution reaction (OER) is the most critical step in water splitting, still limiting the development of efficient alkaline water electrolyzers. Here we investigate the OER activity of Au-Fe nanoalloys obtained by laser-ablation synthesis in solution. This method allows a high amount of iron (up to 11 at%) to be incorporated into the gold lattice, which is not possible in Au-Fe alloys synthesized by other routes, due to thermodynamic constraints. The Au0.89Fe0.11 nanoalloys exhibit strongly enhanced OER in comparison to the individual pure metal nanoparticles, lowering the onset of OER and increasing up to 20 times the current density in alkaline aqueous solutions. Such a remarkable electrocatalytic activity is associated to nanoalloying, as demonstrated by comparative examples with physical mixtures of gold and iron nanoparticles. These results open attractive scenarios to the use of kinetically stable nanoalloys for catalysis and energy conversion.
机译:氧气进化反应(oer)是水分裂中最关键的步骤,仍限制了有效碱性水电解槽的发展。 在这里,我们研究了通过激光烧蚀合成在溶液中获得的Au-Fe纳米合金的OER活性。 该方法允许将大量的铁(高达11at%)掺入金晶格中,由于热力学约束,在其他途径合成的Au-Fe合金中是不可能的。 Au0.89Fe0.11纳米合金与各自的纯金属纳米颗粒相比表现出强大的oer,降低了oer的发作并增加了碱性水溶液中电流密度的高达20倍。 这种显着的电催化活性与纳米合金化相关,如通过金和铁纳米粒子的物理混合物的比较例所证明的。 这些结果为使用动力学稳定的纳米合金用于催化和能量转换而开放有吸引力的情景。

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