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Raney type surfaces prepared by high energy ball milling: application to the synthesis of electrocatalysts for the sodium chlorate industry

机译:高能量球磨制备的Raney型表面:应用于氯酸钠工业的电催化剂的合成

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SThe specific surface area of nanocrystalline Ti_2RuFeO_2 alloy prepared by mehcanical alloying is low, typically of the order of 1 m~2 g~(-1). When used as a cathode material for the hydrogen evolution in typical chlorate electrolysis conditions, this alloy leads to a 250-300 mV reduvtion of the cathodic overpotential compared to that of the steel cathodes commonly used in the industry. The apparent activity of this material can be further increased by modifying its specific surface area. The strategy consists of mixing the nanocrystalline alloy with a leachable lement (Al) that is selectively dissolved in a subseuqnt step. SInce the alloy is a multicomponent and multiphase metastable compound, the mixing step ought to be performed in such a way not to modify the structure of th material. Mechanical alloying has been used for that purpose. A ten-fold increase of the surface area following has been used for that purpose. A tne-fold increase of the s urface area following leaching of Al was achieved. Following optimization of the electrode fabrication parameters, a further decrase of 80-100 mV decrease of the cathodic overpotential was observed.
机译:通过MeHCanical合金化制备的纳米晶Ti_2RuFeO_2合金的STHE比表面积为低,通常为1m〜2g〜(-1)的顺序。当用作典型的氯酸盐电解条件下的氢进化的阴极材料时,与工业中常用的钢阴极相比,该合金导致阴极超态的250-300mV reduvtion。通过改变其特定表面积可以进一步增加这种材料的表观活性。该策略包括将纳米晶合金与可浸出的叶片(Al)混合,所述可脱离的叶片(Al)选择性地溶解在副QT步骤中。由于合金是多组分和多相稳定性化合物,因此混合步骤应该以不改变物料的结构来进行。机械合金化已被用于此目的。用于该目的的表面积增加了10倍。达到了Al浸出后的S URFace区域的TNE折叠增加。在优化电极制造参数之后,观察到阴极超出势的80-100mV降低的进一步判断。

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