首页> 外文期刊>Journal of Electroanalytical Chemistry: An International Journal Devoted to All Aspects of Electrode Kinetics, Interfacial Structure, Properties of Electrolytes, Colloid and Biological Electrochemistry >Solid polymer electrolyte membrane composite microelectrode investigations of fuel cell reactions. II: voltammetric study of methanol oxidation at the nanostructured platinum microelectrode vertical bar Nafion((R)) membrane interface
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Solid polymer electrolyte membrane composite microelectrode investigations of fuel cell reactions. II: voltammetric study of methanol oxidation at the nanostructured platinum microelectrode vertical bar Nafion((R)) membrane interface

机译:固体聚合物电解质膜复合微电极对燃料电池反应的研究。 II:在纳米结构的铂微电极垂直条Nafion(R)膜界面处甲醇氧化的伏安研究

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Electrochemical oxidation of methanol occurring at the high surface area nanostructured platinum film/Nafion(R) membrane interface has been studied using voltammetry at various temperatures. The effect of mobile anions on the electrode processes usually encountered in aqueous electrolyte is avoided in this composite microelectrode configuration. Both the methanol oxidation reaction (mor) and the carbon monoxide oxidation reaction have been studied at the platinum/Nafion(R) membrane interface. The mor is found to be similar to that seen in aqueous acid electrolytes, although there are some interesting differences. Methanol adsorbs on platinum over the entire potential range studied. When the potential is greater than 0.3 V (RHE), a proton is stripped from the adsorbed methanol to form CH2OHad. The direct electrooxidation of methanol to CO2 commences at potentials more positive than 0.60 V vs. RHE where OHad is produced. During the negative-going scan an oxidation peak appears at potentials where the coverage of the surface hydroxyl is about 0.5. In contrast, during the positive-going scan, the peak oxidation current is seen at potentials where the hydroxyl coverage is smaller than 0.5, possibly owing to reaction intermediates blocking available methanol and hydroxyl adsorption sites. Importantly, we have found that surface sites which are not in contact with the proton-conductive Nafion(R) membrane participate in electrochemical reactions. The surface area accessible to the hydrogen and CO adsorption/stripping processes is about twice that available to the methanol process, suggesting that some of the intermediates in the mor have low surface diffusion coefficients compared to H-ad and COad. The presence of these surface diffusion processes have important implications regarding the performance of DMFC anodes and new anode electrocatalysts. (C) 2004 Elsevier B.V. All rights reserved.
机译:已经使用伏安法在不同温度下研究了在高表面积纳米结构铂膜/ Nafion膜界面上发生的甲醇的电化学氧化。在这种复合微电极构造中,避免了移动阴离子对水性电解质中通常遇到的电极过程的影响。在铂/ Nafion膜界面上已经研究了甲醇氧化反应(mor)和一氧化碳氧化反应。尽管存在一些有趣的差异,但发现mor与含水酸性电解质中的mor类似。在研究的整个电位范围内,甲醇吸附在铂上。当电势大于0.3 V(RHE)时,质子会从吸附的甲醇中脱出,形成CH2OHad。与产生OHad的RHE相比,甲醇直接电氧化为CO2的电势高于0.60V。在负向扫描期间,氧化峰出现在表面羟基覆盖率约为0.5的电位处。相反,在正向扫描过程中,在羟基覆盖率小于0.5的电势处看到了峰值氧化电流,这可能是由于反应中间体阻塞了可用的甲醇和羟基吸附位点。重要的是,我们发现不与质子传导性Nafion膜接触的表面位点参与电化学反应。氢和一氧化碳吸附/汽提过程可及的表面积约为甲醇过程的两倍,这表明金属氧化物中的某些中间体与H-ad和COad相比具有较低的表面扩散系数。这些表面扩散过程的存在对DMFC阳极和新型阳极电催化剂的性能具有重要意义。 (C)2004 Elsevier B.V.保留所有权利。

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