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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Designing materials by means of the cavity-microelectrode: the introduction of the quantitative rapid screening toward a highly efficient catalyst for water oxidation
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Designing materials by means of the cavity-microelectrode: the introduction of the quantitative rapid screening toward a highly efficient catalyst for water oxidation

机译:通过型腔微电极设计材料:引入定量快速筛选,以形成高效的水氧化催化剂

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摘要

In this paper, we introduce the concept and the methodology of quantitative rapid screening (QRS) of catalysts. It is based on the use of the cavity-microelectrode (C-ME), a tool that hosts a known amount of powder and can be filled and emptied quickly, thus allowing the quantitative, rapid, fine characterization of different materials. Here, C-MEs are used for selecting a suitable material to be used as electrocatalyst for the oxygen evolution reaction (water oxidation) in acidic environment, a key process for the majority of the industrial electrolytic applications including the production of high purity hydrogen. A matrix of materials, each having the same low iridium oxide content, is quantitatively screened for finding the most promising one. C-MEs allowed us to measure the effective number of active Ir sites and their surface concentration. The success of this strategy is proven by the good performance of the "best" material when tested in a proton exchange membrane water electrolyzer, that allowed high hydrogen fluxes at a low cell potential (~4000 dm~3 h~(-1) m~(-2) at less than 1.9 V).
机译:在本文中,我们介绍了催化剂定量快速筛选(QRS)的概念和方法。它基于空腔微电极(C-ME)的使用,空腔微电极(C-ME)承载着已知数量的粉末,可以快速填充和排空,因此可以对不同材料进行定量,快速,精细的表征。在此,C-ME用于选择合适的材料作为酸性环境中的氧释放反应(水氧化)的电催化剂,这是大多数工业电解应用(包括生产高纯度氢)的关键过程。对每种均具有相同低氧化铱含量的材料矩阵进行定量筛选,以找到最有前途的材料。 C-ME使我们能够测量活性Ir位点的有效数量及其表面浓度。当在质子交换膜水电解槽中进行测试时,“最佳”材料的良好性能证明了该策略的成功,该材料在较低的电池电势(〜4000 dm〜3 h〜(-1)m)下允许高氢通量〜(-2)低于1.9 V)。

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