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Effect of nitrogen doping on the catalytic activity of carbon nano-onions for the oxygen reduction reaction in microbial fuel cells

机译:氮掺杂对微生物燃料电池氧还原反应碳纳米洋葱催化活性的影响

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In this study, highly graphitic nitrogen-doped carbon nano-onions (N-CNOs) were prepared by a one-step, direct, in situ flame synthesis technique and their potential applications as catalysts for oxygen reduction reaction (ORR) in a microbial fuel cell (MFC) were evaluated for the first time. The ORR activity of the CNO, N-CNO, and the commercial Pt/C were measured using a rotating ring-disk electrode (RRDE). The reaction mechanism for the N-CNO was found to follow a four-electron transfer pathway and possess a higher onset potential in RRDE measurement than CNOs. The ORR activity of N-CNO was 5.4 times better than that of CNO, which was attributed to the introduction of nitrogen to the carbon faramework. The MFC fabricated with the N-CNO cathode produced a maximum power density of 49.6 mW m(-2), which was approximately double the performance of the CNO-based MFC. The performance of N-CNO was low compared to Pt/C but the cost per power was only 1/310th. These results confirmed that N-CNOs could be used as a low-cost alternative and an energy-efficient metal-free ORR catalyst for practical MFC applications. (C) 2019 Published by Elsevier B.V. on behalf of The Korean Society of Industrial and Engineering Chemistry.
机译:在该研究中,通过单步,直接原位火焰合成技术及其潜在应用作为微生物燃料中的氧还原反应(ORR)的催化剂,制备高石墨氮掺杂的碳纳米洋葱(N-CNO)第一次评估细胞(MFC)。使用旋转环盘电极(RRDE)测量CNO,N-CNO和商业PT / C的ORR活性。发现N-CNO的反应机制遵循四电子转移途径,并且比CNO在RRDE测量中具有较高的发病电位。 N-CNO的ORR活性比CNO的5.4倍,这归因于将氮气引入碳游泳工作。用N-CNO阴极制造的MFC产生的最大功率密度为49.6mW m(-2),其基于CNO基MFC的性能大约是加倍。与PT / C相比,N-CNO的性能低,但每个功率的成本仅为1/310。这些结果证实,N-CNO可用作实际MFC应用的低成本替代和节能的无金属ORR催化剂。 (c)2019年由Elsevier B.V发布。代表朝鲜工程和工程化学学会。

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