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Electrochemical stability of carbon nanofibers in proton exchange membrane fuel cells

机译:碳纳米纤维在质子交换膜燃料电池中的电化学稳定性

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This fundamental study deals with the electrochemical stability of several non-conventional carbon based catalyst supports, intended for low temperature proton exchange membrane fuel cell (PEMFC) cathodes. Electrochemical surface oxidation of raw and functionalized carbon nanofibers, and carbon black for comparison, was studied following a potential step treatment at 25.0℃ in acid electrolyte, which mimics the operating conditions of low temperature PEMFCs. Surface oxidation was characterized using cyclic voltammetry, X-ray photoelectron spectroscopy (XPS), and contact angle measurements. Cyclic voltammograms clearly showed the presence of the hydroquinone/quinone couple. Furthermore, identification of carbonyl, ether, hydroxyl and carboxyl surface functional groups were made by deconvolution of the XPS spectra. The relative increase in surface oxides on carbon nanofibers during the electrochemical oxidation treatment is significantly smaller than that on carbon black. This suggests that carbon nanofibers are more resistant to the electrochemical corrosion than carbon black under the experimental conditions used in this work. This behaviour could be attributed to the differences found in the microstructure of both kinds of carbons. According to these results, carbon nanofibers possess a high potential as catalyst support to increase the durability of catalysts used in low temperature PEMFC applications.
机译:这项基础研究涉及几种用于低温质子交换膜燃料电池(PEMFC)阴极的非常规碳基催化剂载体的电化学稳定性。在酸性电解质中在25.0℃下进行了潜在的阶梯处理后,研究了原始和功能化的碳纳米纤维的电化学表面氧化,并进行了比较,以模拟低温PEMFC的工作条件。使用循环伏安法,X射线光电子能谱(XPS)和接触角测量来表征表面氧化。循环伏安图清楚地表明存在氢醌/醌对。此外,通过XPS光谱的反卷积鉴定羰基,醚,羟基和羧基表面官能团。在电化学氧化处理期间,碳纳米纤维上的表面氧化物的相对增加量明显小于炭黑上的。这表明在这项工作中使用的实验条件下,碳纳米纤维比炭黑更耐电化学腐蚀。这种行为可以归因于两种碳的微观结构中的差异。根据这些结果,碳纳米纤维具有作为催化剂载体的高潜力,以增加在低温PEMFC应用中使用的催化剂的耐久性。

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