首页> 外文期刊>Applied Surface Science >Bioinspired in situ self-catalyzing strategy towards graphene nanosheets with hierarchical structure derived from biomass for advanced supercapacitors
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Bioinspired in situ self-catalyzing strategy towards graphene nanosheets with hierarchical structure derived from biomass for advanced supercapacitors

机译:Bioinspired原位自催化策略朝向石墨烯纳米片,其具有来自生物量的高级超级电容器的分层结构

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摘要

Ultrahigh-quality graphene with structural hierarchy has been successfully fabricated through a novel and effective bioinspired in situ self-catalyzing strategy with camphor leaves as a renewable carbon source. The intrinsic Ca-containing species in biomass transfers into CaO via the intermediate of CaCO3 during the pyrolysis process, and the finally imbedded CaO functions as in situ hard template and catalyst to generate hierarchical structure and construct the graphitic structure. The utilization of KOH effectively facilitated the graphene formation and enhanced the porosity of the carbon materials. The resultant graphene possesses many advantages for supercapacitor application, including large surface area, hierarchical porosity (crosslinked micro/meso/macroporous vacancies), well-organized graphene layers and favorable dually co-doping of O/N, thereby contributing to rapid charge transportation on the electrode/electrolyte interface, fast diffusion of electrolyte ions and high conductivity. When directly used as supercapacitor electrode (without the mixture of any conductive agent), asproduced graphene exhibited a specific capacitance of 397F/g at a current density of 1.0 A/g with a high rate retention of 74% from 1 to 20 A/g in a three-electrode system with 6 M KOH aqueous electrolyte. The highquality graphene prepared from biomass via a readily scalable method opened up new vision towards high performance applications in energy storage and conversion.
机译:具有结构层次结构的超高质量石墨烯已通过新颖且有效的生物悬浮策略成功制造,樟脑离开作为可再生碳源。在热解过程中,生物质中的固有Ca的物质通过CaCO 3中间体转移到CaO中,并且最终嵌入的CaO在原位硬模板和催化剂中起作用以产生分层结构并构建石墨结构。 KOH的利用有效地促进了石墨烯形成并增强了碳材料的孔隙率。所得石墨烯具有超级电容器应用的许多优点,包括大表面积,分层孔隙率(交联的微/ Meso /大孔空位),良好组织的石墨烯层和O / N的有利双重共同掺杂,从而有助于快速充电运输电极/电解质界面,电解质离子的快速扩散和高导电性。当直接用作超级电容器电极(没有任何导电剂的混合物)时,磷酸的石墨烯在1.0A / g的电流密度下表现出397f / g的特定电容,其高速保留为74%,从1至20a / g为74%在具有6M KOH含水电解质的三电极系统中。通过易缩放方法从生物质制备的高度石墨烯开启了能量存储和转换中的高性能应用的新视觉。

著录项

  • 来源
    《Applied Surface Science》 |2021年第15期|150692.1-150692.11|共11页
  • 作者单位

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

    Hangzhou Normal Univ Hangzhou 311121 Peoples R China;

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

    Anhui Polytech Univ Sch Chem & Environm Engn Wuhu 241000 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    High-quality graphene; Self-catalyzation; Supercapacitors; Biomass;

    机译:高质量的石墨烯;自催化;超级电容器;生物量;

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