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硼、氮和铁三元掺杂碳化氧化石墨烯基催化剂在微生物燃料电池中对氧还原的优越性。

Superiority of boron, nitrogen and iron ternary doped carbonized graphene oxide-based catalysts for oxygen reduction in microbial fuel cells.

机构信息

Beijing National Laboratory for Molecular Sciences (BNLMS), Key Laboratory of Green Printing, Institute of Chemistry, Chinese Academy of Sciences, Zhongguancun North First Street 2, Beijing 100190, China.

出版信息

Nanoscale. 2017 Mar 9;9(10):3537-3546. doi: 10.1039/c7nr00869d.

Abstract

The exploration of highly active and cost-effective catalysts for the oxygen reduction reaction is vitally important to facilitate the improvement of metal-air batteries and fuel cells. Herein, super-active catalysts made from an interesting metal-polymer network (MPN) that consist of Fe-N-C, B-N and FeO/FeC alloys were prepared via facile one-pot carbonization. The achieved catalysts possessed an amazing porous structure that was derived from the MPN with the assistance of a "bubble-template". Remarkably, the content of highly active Fe-N-C can be regulated by introducing graphene, and the ORR activity of the catalyst was enhanced dramatically with an increase in the FeO/FeC alloy content. The most active BNFe-C-G2 catalyst exhibited superior ORR activity/stability, and was then employed as an air cathode electrocatalyst in a microbial fuel cell. The results showed that the output voltage and power density of BNFe-C-G2 were significantly improved to 575 ± 11 mV and 1046.2 ± 35 mW m, respectively. These values are 4.5% and 44.44% higher than those of commercial Pt/C. Thus, due to the synergistic electrocatalysis of the Fe-N-C, B-N and FeO/FeC alloys, the super-active and low-cost BNFe-C-G2 material should be a promising ORR catalyst for application in biofuel cells, and in many other energy conversion and storage devices.

摘要

探索高效且经济实用的氧还原反应催化剂对于促进金属空气电池和燃料电池的发展至关重要。本文通过简便的一锅碳化法制备了由具有优异氧还原反应(ORR)活性的 Fe-N-C、B-N 和 FeO/FeC 合金组成的有趣金属-聚合物网络(MPN)衍生的超活性催化剂。所制备的催化剂具有令人惊叹的多孔结构,这得益于 MPN 和“气泡模板”的协同作用。引人瞩目的是,通过引入石墨烯可以调节高活性 Fe-N-C 的含量,并且随着 FeO/FeC 合金含量的增加,催化剂的 ORR 活性显著增强。最具活性的 BNFe-C-G2 催化剂表现出卓越的 ORR 活性/稳定性,随后被用作微生物燃料电池中的空气阴极电催化剂。结果表明,BNFe-C-G2 的输出电压和功率密度分别显著提高到 575±11 mV 和 1046.2±35 mW m,分别比商业 Pt/C 提高了 4.5%和 44.44%。因此,由于 Fe-N-C、B-N 和 FeO/FeC 合金的协同电催化作用,这种超活性和低成本的 BNFe-C-G2 材料应该是一种很有前途的 ORR 催化剂,可应用于生物燃料电池以及许多其他能量转换和存储设备中。

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