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2D quasi-ordered nitrogen-enriched porous carbon nanohybrids for high energy density supercapacitors

机译:2 d拟序多孔碳氮nanohybrids高的能量密度超级电容器

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摘要

Two-dimensional (2D) quasi-ordered nitrogen-enriched porous carbon (QNPC) nanohybrids, with the characteristics of an ultrathin graphite nanosheet framework and thick quasi-ordered nitrogen-doped carbon cladding with a porous texture, have been synthesized via an in situ polymerization assembly method. In the synthesis, the expandable graphite (EG) is enlarged by an intermittent microwave method, and then aniline monomers are intercalated into the interlayers of the expanded EG with the assistance of a vacuum. Subsequently, the intercalated aniline monomers could assemble on the interlayer surface of the expanded EG, accompanied by the in situ polymerization from aniline monomers to polyaniline. Meanwhile, the expanded EG could be exfoliated to graphite nanosheets. By subsequent pyrolysis and activation processes, the QNPC nanohybrids could be prepared. As supercapacitor electrodes, a typical QNPC12-700 sample derived from the precursor containing an EG content of 12%, with a high level of nitrogen doping of 5.22 at%, offers a high specific capacitance of 305.7 F g(-1) (1 A g(-1)), excellent rate-capability and long-term stability. Notably, an extremely high energy density of 95.7 Wh kg(-1) at a power density of 449.7 W kg(-1) in an ionic liquid electrolyte can be achieved. The unique structural features and moderate heteroatom doping of the QNPC nanohybrids combines electrochemical double layer and faradaic capacitance contributions, which make these nanohybrids ideal candidates as electrode materials for high-performance energy storage devices.
机译:二维(2 d)拟序添加氮的多孔碳(QNPC)nanohybrids,的特征超薄石墨nanosheet框架和厚拟序nitrogen-doped碳包覆多孔结构,通过在合成原位聚合的组装方法。合成,可膨胀石墨(EG)扩大的间歇微波方法,然后苯胺单体插入到夹层的扩大的援助的真空。间苯胺单体可以组装的层间表面扩展如伴随着的原位聚合苯胺单体聚苯胺。扩展可以剥落石墨nanosheets。激活过程,QNPC nanohybrids做好准备。典型的qnpc12 - 700样本来自前体含有12%的如内容,高水平的氮掺杂% 5.22的报价高的比电容的305.7 g F (1) (1g(1)),优秀的rate-capability和长期稳定。密度95.7 Wh公斤(1)的功率密度449.7 W公斤(1)离子液体电解质才能实现。温和的杂原子掺杂QNPCnanohybrids结合电化学双层和电容感应电流的贡献使这些nanohybrids理想的候选人为高性能电极材料的能量存储设备。

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