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Electrocatalytic Activity of Core-shell Carbon-metal Nanocomposites Derived From Carbon Dioxide

机译:二氧化碳衍生核 - 壳碳 - 金属纳米复合材料的电催化活性

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The polymer electrolyte fuel cell (PEFC) is one of promising devices to convert chemical energy of fuels to electrical energy with high energy efficiency, high power density, and low environment impact. Despite wide applications in many areas, the large-scale commercialization of PEFCs is difficult because of the high cost of platinum-based electrocatalysts for oxygen reduction reaction (ORR) at cathode. There have been numerous efforts to developing alternative materials to platinum-based electrocatalysts and here we introduce boron-doped carbon/iron nanocomposites (Fe/B/C) as oxygen reduction electrocatalysts. They were synthesized through the reduction of CO2 by NaBH4 with a Fe precursor at 500 °C and atmospheric pressure. Furthermore we performed heat treatments of the resulting Fe/B/C at 850°C, 1050 °C (sample named as FeBC050, FeBC850 and FeBC105). Fe/B/C composites have a core@shell structure, in which the iron-containing nanoparticles are confined within onion-like graphitic carbon shells. Electrochemical analyses in cyclic voltammetry (CV) and rotating disk electrode (RDE) showed Fe/B/C composites enhanced ORR activity and especially FeBC105 presented excellent performance. Through XRD analyses, XPS, SEM and HRTEM observations, the thermal annealing is proved to be the reason for this better performance that changes the surface state and more active sites are generated by both the reduction of γ-Fe2O3 and the decomposition of B4C species.
机译:聚合物电解质燃料电池(PEFC)是具有高能量效率,高功率密度和低环境冲击的电能的有前途的装置之一。尽管在许多领域的应用范围广泛,但由于铂类电催化剂在阴极上的氧还原反应(ORR)的高成本,PEFC的大规模商业化是困难的。将替代材料开发给铂基电催化剂的替代材料,并在此引入硼掺杂的碳/铁纳米复合材料(Fe / B / C)作为氧还原电催化剂。通过NaBH 4通过在500℃和大气压下通过NaBH 4减少CO 2来合成它们。此外,我们在850℃,1050℃(名为2月50,2050,FeBC850和FeBC105的样品中的所得Fe / B / C的热处理进行热处理。 Fe / B / C复合材料具有核心@壳结构,其中含铁纳米颗粒局限于洋葱状石墨壳内。循环伏安法(CV)和旋转盘电极(RDE)中的电化学分析显示出Fe / B / C复合材料增强的ORR活性,特别是FEBC105呈现出优异的性能。通过XRD分析,XPS,SEM和HRTEM观测,证明了热退火是通过γ-Fe2O3的还原和B4C物种的分解来产生改变表面状态和更多活性位点的更好性能的原因。

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