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Polyurethane foam derived nitrogen-enriched porous carbon/reduced graphene oxide composite with sandwich-like nanoarchitectures for supercapacitors

机译:聚氨酯泡沫衍生的富氮碳多孔/氧化石墨烯复合材料,具有类似三明治结构的超级电容器

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摘要

A new type of polyurethane (PU) foam derived nitrogen-enriched porous carbon/reduced graphene oxide (PU/rGO) composite was synthesized and studied for the first time. By taking advantages of PU foam as carbon skeleton precursor, GO nanosheets wrapped onto the skeleton’s surface through hydrothermal process, then the stable porous sandwich-like nanoarchitectures built after carbonization process. Moreover, the wrapped GO can be transformed into rGO due to thermal reduction during the carbonization process. When being applied as supercapacitor electrodes, the prepared PU/rGO composite could achieve an extremely high specific capacitance of 490 and 341.7 F g_(−1)at a current density of 1 and 20 A g_(−1), respectively. After 5000 cycles, the specific retention yielded to 97.3% at 1 A g_(−1). Resulting from these merits, the as-assembled symmetric supercapacitor device with a wide operating voltage window of 1.5 V exhibit an excellent energy density of 21.66 Wh kg_(−1)at a power density of 825 W kg_(−1)and remain 7.5 Wh kg_(−1)even at a high power density of 2250 W kg_(−1). Most importantly, this work may offer a strategy for converting the PU foam wastes into carbon material with excellent electrochemical performance applied on energy storage.
机译:首次合成并研究了一种新型的聚氨酯泡沫衍生的富氮多孔碳/氧化石墨烯(PU / rGO)复合材料。利用PU泡沫作为碳骨架前体的优势,GO纳米片通过水热过程包裹在骨架表面,然后在碳化过程后建立了稳定的多孔三明治状纳米结构。此外,由于碳化过程中的热还原,包裹的GO可以转变为rGO。当用作超级电容器电极时,制备的PU / rGO复合材料在电流密度分别为1和20 A g _(-1)时可以分别实现490和341.7 F g _(-1)的极高比电容。经过5000次循环后,在1 A g _(-1)下的比保留率达到97.3%。由于这些优点,组装后的对称超级电容器器件具有1.5V的宽工作电压窗口,在825W kg _(-1)的功率密度下表现出21.66 Wh kg _(-1)的出色能量密度,并保持7.5 Wh即使在2250 W的高功率密度下,kg _(− 1)kg _(− 1)。最重要的是,这项工作可以提供一种将PU泡沫废料转化为具有优异电化学性能的碳材料的策略,该电化学性能可应用于储能。

著录项

  • 来源
    《Journal of materials science》 |2018年第12期|9942-9953|共12页
  • 作者单位

    Key Laboratory of Chemical Engineering Process & Technology for High-efficiency Conversion, College of Heilongjiang Province, College of Chemistry Engineering and Materials, Heilongjiang University;

    Key Laboratory of Chemical Engineering Process & Technology for High-efficiency Conversion, College of Heilongjiang Province, College of Chemistry Engineering and Materials, Heilongjiang University;

    Key Laboratory of Chemical Engineering Process & Technology for High-efficiency Conversion, College of Heilongjiang Province, College of Chemistry Engineering and Materials, Heilongjiang University;

    Key Laboratory of Microbiology, School of Life Science, Heilongjiang University;

    Key Laboratory of Chemical Engineering Process & Technology for High-efficiency Conversion, College of Heilongjiang Province, College of Chemistry Engineering and Materials, Heilongjiang University;

    Key Laboratory of Chemical Engineering Process & Technology for High-efficiency Conversion, College of Heilongjiang Province, College of Chemistry Engineering and Materials, Heilongjiang University;

    Key Laboratory of Chemical Engineering Process & Technology for High-efficiency Conversion, College of Heilongjiang Province, College of Chemistry Engineering and Materials, Heilongjiang University;

    Key Laboratory of Chemical Engineering Process & Technology for High-efficiency Conversion, College of Heilongjiang Province, College of Chemistry Engineering and Materials, Heilongjiang University;

    Key Laboratory of Microbiology, School of Life Science, Heilongjiang University;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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