4.7 Article

Design and Synthesis of N-Doped Carbon Skeleton Assembled by Carbon Nanotubes and Graphene as a High-Performance Electrode Material for Supercapacitors

Journal

ACS APPLIED ENERGY MATERIALS
Volume 4, Issue 8, Pages 7731-7742

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsaem.1c01094

Keywords

humate; ZIFs; carbon skeleton; nitrogen doping; supercapacitors; carbon nanotubes; graphene layers

Funding

  1. National Natural Science Foundation of China [21406176]
  2. Natural Science Basic Research Plan Project of Shaanxi Province [2020JM-518]
  3. Open Project of Key Laboratory of Coal Resources Exploration and Comprehensive Utilization [KF2020-11]
  4. Science and Technology Plan Project of Beilin District [GX2030]
  5. Shannxi Technology Innovation Guidance Project.Regional Innovation Ability Guidance Plan [2021 QFY04-01]
  6. CHN ENERGY
  7. Coal Washing AMP
  8. Preparation Center of Ningxia Coal Industry Co., Ltd.

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The nitrogen-doped carbon skeleton synthesized in this work, utilizing a layer-shaped humate-based zeolitic imidazolate framework as a template, demonstrated high capacitance performance with rich mesoporous structure and high specific surface area.
Current, there is an urgent demand for electrode materials with superior electrochemical performances for the development of supercapacitors. A nitrogen-doped carbon skeleton (NCS) assembled by carbon nanotubes and graphene layers is designed and synthesized utilizing a layer-shaped humate-based zeolitic imidazolate framework (ZIF) (HA-CoFe-ZIF) as a template in this work. The synthesized NCS is mainly composed of graphitized carbon with a few hydroxyl groups on its surface, synchronously doped by 9.5 at % nitrogen in the state of pyridinic N and pyrrolic N. The rich mesoporous structure entitles it to a high Brunauer-Emmett-Teller (BET) specific surface area of 427 m(2) g(-1) and suitable BET average pore diameter of 3.14 nm. The NCS has a high capacity of 324 F g(-1) at 1 A g(-1), good rate capability (capacitance retention of 71% from 5 to 100 A g(-1)), and excellent cycling stability (capacitance retention of 96 and 87% after 5000 and 10 000 cycles, respectively). The fabricated NCS//AC asymmetric supercapacitor also exhibits a high capacity of 93 F g(-1) at 1 A g(-1), large energy density of 10.3 Wh kg(-1) at 331 W kg(-1), and good cycling performance (capacitance retention of 88% after 5000 cycles). Our elaborately designed NCS materials exhibit multiple structural advantages including rich mesoporous structure, various graphitic carbon, and high-dosage nitrogen doping, resulting in high capacitance performances. This humate-based metal-organic framework (MOF)-derived strategy provides a good idea for the synthesis of high-performance carbon skeleton materials applied to energy storage.

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