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Efficient Oxygen Reduction Electrocatalyst Based on Edge-Nitrogen-Rich Graphene Nanoplatelets: Toward a Large-Scale Synthesis

机译:基于富氮边缘石墨烯纳米片的高效氧还原电催化剂:大规模合成

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摘要

The large-scale synthesis of nitrogen doped graphene (N-graphene) with high oxygen reduction reaction (ORR) performance has received a lot of attention recently. In this work, we have developed a facile and economical procedure for mass production of edge-nitrogen-rich graphene nanoplatelets (ENR-GNPs) by a combined process of ball milling of graphite powder (GP) in the presence of melamine and subsequent heat treatment. It is found that the ball milling process can not only crack and exfoliate pristine GP into edge-expanded nanoplatelets but also mechanically activate GP to generate appropriate locations for N-doping. Analysis results indicate that the doped N atoms mainly locate on the edge of the graphitic matrix, which contains ca. 3.1 at.% nitrogen content and can be well-dispersed in aqueous to form multilayer nanoplatelets. The as-prepared ENR-GNPs electrocatalyst exhibits highly electrocatalytic activity for ORR due to the synergetic effects of edge-N-doping and nanosized platelets. Besides, the stability and methanol tolerance of ENR-GNPs are superior to that of the commercial Pt/C catalyst, which makes the nanoplatelets a promising candidate for fuel cell cathode catalysts. The present approach opens up the possibility for simple and mass production of N-graphene based electrocatalysts in practice.
机译:具有高氧还原反应(ORR)性能的氮掺杂石墨烯(N-石墨烯)的大规模合成近来引起了很多关注。在这项工作中,我们通过在三聚氰胺存在下对石墨粉(GP)进行球磨的联合工艺,开发了一种易于生产且经济的方法,可大量生产富含边缘氮的石墨烯纳米片(ENR-GNP) 。发现球磨工艺不仅可以将原始的GP裂纹和剥落为边缘扩展的纳米片,而且还可以机械激活GP以生成合适的N掺杂位置。分析结果表明,掺杂的N原子主要位于石墨基体的边缘,该边缘约含Ca。氮含量为3.1 at。%,可以很好地分散在水溶液中以形成多层纳米片。制备的ENR-GNPs电催化剂由于边缘N掺杂和纳米级血小板的协同作用而对ORR表现出高度的电催化活性。此外,ENR-GNPs的稳定性和甲醇耐受性优于市售Pt / C催化剂,这使纳米片成为燃料电池阴极催化剂的有希望的候选者。本方法在实践中为简单且大量生产基于N-石墨烯的电催化剂开辟了可能性。

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