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Electrocatalysis for oxygen electrodes in fuel cells and water electrolyzers for space applications

机译:用于空间应用的燃料电池和水电解槽中氧电极的电催化

摘要

In most instances separate electrocatalysts are needed to promote the reduction of O2 in the fuel cell mode and to generate O2 in the energy storage-water electrolysis mode in aqueous electrochemical systems operating at low and moderate temperatures (T greater than or equal to 200 C). Interesting exceptions are the lead and bismuth ruthenate pyrochlores in alkaline electrolytes. These catalysts on high area carbon supports have high catalytic activity for both O2 reduction and generation. Rotating ring-disk electrode measurements provide evidence that the O2 reduction proceeds by a parallel four-electron pathway. The ruthenates can also be used as self-supported catalysts to avoid the problems associated with carbon oxidation, but the electrode performance so far achieved in the research at Case Western Reserve University (CWRU) is considerably less. At the potentials involved in the anodic mode the ruthenate pyrochlores have substantial equilibrium solubility in concentrated alkaline electrolyte. This results in the loss of catalyst into the bulk solution and a decline in catalytic activity. Furthermore, the hydrogen generation counter electrode may become contaminated with reduction products from the pyrochlores (lead, ruthenium).
机译:在大多数情况下,在低温和中等温度(T大于或等于200 C)下运行的水性电化学系统中,需要单独的电催化剂来促进燃料电池模式下O2的还原并在能量存储-水电解模式下产生O2。 。有趣的例外是碱性电解质中的钌酸铋和钌酸烧绿石。这些在高面积碳载体上的催化剂对O2还原和生成均具有高催化活性。旋转圆盘电极测量提供了O2还原通过平行四电子路径进行的证据。钌酸盐也可以用作自担催化剂,以避免与碳氧化有关的问题,但是迄今为止,在凯斯西储大学(CWRU)的研究中获得的电极性能要低得多。在阳极模式所涉及的电位下,钌酸盐烧绿石在浓碱性电解质中具有实质的平衡溶解度。这导致催化剂损失进入本体溶液并降低催化活性。此外,氢气产生对电极可能会被烧绿石(铅,钌)的还原产物污染。

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