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气体流调控策略制备类石墨烯 Co-Nx-C 纳米片负载亚 10nmPtCo 纳米合金协同催化剂用于空气阴极微生物燃料电池

Gas-Flow Tailoring Fabrication of Graphene-like Co-Nx-C Nanosheet Supported Sub-10 nm PtCo Nanoalloys as Synergistic Catalyst for Air-Cathode Microbial Fuel Cells.

机构信息

Beijing National Laboratory for Molecular Sciences, Key Laboratory of Green Printing, Institute of Chemistry, Chinese Academy of Sciences , Beijing 100190, P. R. China.

University of Chinese Academy of Sciences , Beijing 100049, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2017 Jul 12;9(27):22465-22475. doi: 10.1021/acsami.7b04564. Epub 2017 Jun 30.

DOI:10.1021/acsami.7b04564
PMID:28665104
Abstract

In this work, we presented a novel, facile, and template-free strategy for fabricating graphene-like N-doped carbon as oxygen reduction catalyst in sustainable microbial fuel cells (MFCs) by using an ion-inducing and spontaneous gas-flow tailoring effect from a unique nitrogen-rich polymer gel precursor which has not been reported in materials science. Remarkably, by introduction of trace platinum- and cobalt- precursor in polymer gel, highly dispersed sub-10 nm PtCo nanoalloys can be in situ grown and anchored on graphene-like carbon. The as-prepared catalysts were investigated by a series of physical characterizations, electrochemical measurements, and microbial fuel cell tests. Interestingly, even with a low Pt content (5.13 wt %), the most active Co/N codoped carbon supported PtCo nanoalloys (Co-N-C/Pt) exhibited dramatically improved catalytic activity toward oxygen reduction reaction coupled with superior output power density (1008 ± 43 mW m) in MFCs, which was 29.40% higher than the state of the art Pt/C (20 wt %). Notability, the distinct catalytic activity of Co-N-C/Pt was attributed to the highly efficient synergistic catalytic effect of Co-Nx-C and PtCo nanoalloys. Therefore, Co-N-C/Pt should be a promising oxygen reduction catalyst for application in MFCs. Further, the novel strategy for graphene-like carbon also can be widely used in many other energy conversion and storage devices.

摘要

在这项工作中,我们提出了一种新颖、简便且无需模板的策略,通过使用一种独特的富氮聚合物凝胶前体制备类石墨烯的 N 掺杂碳作为氧还原催化剂,用于可持续的微生物燃料电池 (MFC)。这种策略利用了离子诱导和自发气流调整效应,这在材料科学中尚未有报道。值得注意的是,通过在聚合物凝胶中引入微量的铂和钴前体,可以原位生长并锚定高度分散的亚 10nm PtCo 纳米合金在类石墨烯碳上。通过一系列物理特性表征、电化学测量和微生物燃料电池测试对所制备的催化剂进行了研究。有趣的是,即使 Pt 含量(5.13wt%)较低,最活跃的 Co/N 共掺杂碳负载的 PtCo 纳米合金(Co-N-C/Pt)在 MFC 中对氧还原反应表现出显著提高的催化活性,同时具有优异的输出功率密度(1008±43mW m),比最先进的 Pt/C(20wt%)提高了 29.40%。值得注意的是,Co-N-C/Pt 的显著催化活性归因于 Co-Nx-C 和 PtCo 纳米合金的高效协同催化作用。因此,Co-N-C/Pt 应该是一种有前途的氧还原催化剂,可应用于 MFC。此外,这种类石墨烯碳的新策略也可以广泛应用于许多其他能量转换和存储设备。

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引用本文的文献

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