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Metal organic framework derived iron-nitrogen doped porous carbon support decorated with cobalt and iron as efficient nanocatalyst toward oxygen reduction reaction

机译:金属有机框架衍生的铁氮掺杂多孔碳载体,装饰着钴和铁作为高效纳米催化剂氧气还原反应

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Two porous carbon supports as N-doped carbon (NC) and Fe/N-co-doped carbon (Fe-NC), are obtained from ZIF-8 (zeolitic imidazolate framework) and Fe@ZIF-8, respectively, through the pyrolysis process. They are then decorated with transition metals using a modified polyol method to precipitate Fe, Co, and Fe-Co nanoparticles. The as-prepared catalysts are characterized by different physicochemical, morphological, and electrochemical characterization methods. Field emission scanning electron microscopy images show well-defined preserved polyhedron morphology for all prepared catalysts. Transmission electron microscopy images confirm a uniform distribution of metal nanoparticles through the surface of the supports. X-ray photoelectron spectroscopy results illustrate the existence of high content of graphitic and pyridinic nitrogen. Oxygen reduction reaction (ORR) results show the prepared support, which is in-situ doped with iron (Fe-NC), has better ORR performance than NC support. The results also display Co and Fe nanoparticles' coincident precipitation on the supports can improve ORR. This finding indicates both in-situ and ex-situ metal doping can be beneficial for good ORR performance. The optimum catalyst (Fe-Co/Fe-NC) illustrates enhanced ORR activity and stability with onset potential similar to 0.9V(RHE) in 0.1 M HClO4. Superior performance is associated with a synergistic effect between small and uniform dispersion of Co and Fe nanoparticles and appropriate nitrogen content.
机译:两种多孔碳载体作为N掺杂的碳(NC)和Fe / N-共掺杂碳(Fe-NC)分别通过热解(Zeolitic Imidazolate框架)和Fe @ ZIF-8获得,通过热解过程。然后使用改性多元醇方法用过渡金属装饰,以沉淀Fe,Co和Fe-Co纳米颗粒。制备的催化剂的特征在于不同的物理化学,形态学和电化学表征方法。场发射扫描电子显微镜图像显示所有制备的催化剂的明确定义的Polyhron形态。透射电子显微镜图像通过支撑件的表面确认金属纳米颗粒的均匀分布。 X射线光电子能谱结果说明了石墨和吡啶氮的高含量的存在。氧还原反应(ORR)结果显示制备的载体,其原位掺杂铁(FE-NC),具有比NC载体更好的性能。结果还显示出CO和Fe纳米颗粒的重合沉淀在载体上可以改善ORR。该发现表明原位和前地金属掺杂可以有利于良好的ORR性能。最佳催化剂(Fe-Co / Fe-Nc)说明了同样为0.9V(RHE)的增强的ORR活性和稳定性,在0.1M HClO 4中。优异的性能与CO和Fe纳米颗粒的小和均匀分散和适当的氮含量之间的协同效应相关。

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