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Controllable synthesis of worm-nest-like nanocarbons doped with all-electroactive nitrogen species for high-energy-density supercapacitors

机译:用于高能密度超级电容器的全电活性氮物质掺杂的蠕虫巢状纳米碳的可控合成

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摘要

Because of the instability and uncontrollability of the nitrogen-containing precursor upon high-temperature carbonization, it is very hard to obtain nanocarbon with high nitrogen content over 10 atom% and control-lable electrochemically-active nitrogen species. Herein, we report a role-divided templating/doping strategy for the fabrication of porous nanocarbon supercapacitor materials with all-electroactive nitrogen species and ultrahigh energy density based on MgO and g-C3N4, in which MgO first acts as a polymerization catalyst to form carbon source and then as template for porous structure, while the g-C(3)N(4 )acts as a single nitrogen source. Systematic investigations reveal that the carbonization temperature and the single g-C3N4 nitrogen source are vital to obtaining all-electroactive nitrogen species. The obtained nanocarbon (WNLC973-C1N5) owns a wormnest-like morphology, high surface area and all-electrochemically-active nitrogen functionalities (21.3 atom%). The symmetric supercapacitor based on WNLC973-C1N5 achieves an energy density of 53.2 Wh/kg at a power density of 1000 W/kg, about four times bigger than that of normal carbon-based material. This work highlights the importance of the special nitrogen source to form the all-electrochemically-active nitrogen functionalities for high-performance energy materials and presents facile strategy to fabricate carbon-based materials for extensive applications, such as catalyst, adsorbent, catalyst support, energy material and so on.
机译:由于含氮前体在高温碳化时的不稳定性和无法控制性,因此很难获得具有超过10原子%的高氮含量和对照的电化学 - 活性氮物质的纳米碳。在此,我们报告了基于MgO和G-C3N4的全电活性氮物质和超高能量密度的多孔纳米碳超级电容材料制备的角色分开的模板/掺杂策略,其中MgO首先用作聚合催化剂以形成碳源头然后作为多孔结构的模板,而GC(3)N(4)用作单个氮源。系统研究表明,碳化温度和单个G-C3N4氮源对获得全电活性氮物质至关重要。所得纳米碳(WNLC973-C1N5)拥有类似蠕虫形态,高表面积和全电化学 - 活性氮功能(21.3原子%)。基于WNLC973-C1N5的对称超级电容器以1000W / kg的功率密度为53.2WH / kg的能量密度,大约比正常碳基材料大约四倍。这项工作突出了特殊氮源为高性能能量材料形成全电化学活性氮功能的重要性,并呈现了制造基于碳基材料的容易应用,例如催化剂,吸附剂,催化剂载体,能量材料等。

著录项

  • 来源
    《Applied Surface Science》 |2021年第1期|148463.1-148463.10|共10页
  • 作者单位

    Huanggang Normal Univ Hubei Key Lab Proc & Applicat Catalyt Mat Huanggang 438000 Peoples R China;

    Huanggang Normal Univ Hubei Key Lab Proc & Applicat Catalyt Mat Huanggang 438000 Peoples R China;

    Huanggang Normal Univ Hubei Key Lab Proc & Applicat Catalyt Mat Huanggang 438000 Peoples R China;

    Huanggang Normal Univ Hubei Key Lab Proc & Applicat Catalyt Mat Huanggang 438000 Peoples R China;

    Huanggang Normal Univ Hubei Key Lab Proc & Applicat Catalyt Mat Huanggang 438000 Peoples R China;

    Huanggang Normal Univ Hubei Key Lab Proc & Applicat Catalyt Mat Huanggang 438000 Peoples R China;

    Nanjing Univ Key Lab Mesoscop Chem MOE Sch Chem & Chem Engn Nanjing 210093 Peoples R China;

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

    Function-divided bases; MgO; g-C3N4; Worm-nest-like morphology; Aqueous supercapacitor;

    机译:功能分开的碱;MgO;G-C3N4;虫巢状形态;水性超级电容器;

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