4.8 Article

Self-standing graphitized hybrid Nanocarbon electrodes towards high-frequency supercapacitors

期刊

CARBON
卷 185, 期 -, 页码 630-640

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.carbon.2021.09.059

关键词

Supercapacitors; Ultra-high temperature graphitization; Hybrid films; Graphene edge; High-frequency response

资金

  1. DNL Cooperation Fund, CAS [DNL201915]
  2. Research and Development Project of Key Core and Common Technology of Shanxi Province [2020XXX014]
  3. Youth Innovation Promotion Association of CAS
  4. National Science Foundation for Excellent Young Scholars of China [2192285]
  5. Natural Science Basic Research Program of Shanxi [S2019-JC-LH-QY-SM-0345]
  6. Joint Fund of the Yulin University
  7. Dalian National Laboratory for Clean Energy [2021009]

向作者/读者索取更多资源

This study introduces a method of fabricating carbon nanotubes/graphene hybrid films for high-frequency supercapacitors using an ultra-high temperature graphitization process, which results in exceptional conductivity and capacitance properties.
Carbon materials are considered as the ideal electrode materials for supercapacitors due to their diverse structure and nature. However, their poor frequency response is an obstacle to their application in high frequency supercapacitors. Herein, an ultra-high temperature graphitization process at 2800 degrees C is proposed to fabricate carbon nanotubes/graphene hybrid films that are successfully employed as the electrode materials of high-frequency supercapacitors. By rational hybridization, the carbon nanotubes/graphene interlinked networks offer fast ion transport paths. Importantly, via a graphitization process at 2800 degrees C, the as-obtained hybrid films exhibit an ultrahigh in-plane conductivity of 491.81 S cm(-1) and favorable out-plane conductivity of 27.98 mS cm(-1). Such design brings the as-constructed high-frequency supercapacitors an unprecedented phase angle (up to -56.23 degrees) and area capacitance (up to 230.56 mu F cm(-2)) at 120 Hz, and their cut-off frequency can be nearly 30 times higher than that of films carbonization at 1600 degrees C. Such increases, further supported by density functional theory (DFT) calculations, are partly attributable to enhancements of ion response arising from the repair of edge defects of graphene. These findings will provide a new method in designing the structure of carbon electrodes for enhancing SCs frequency response performances. (C) 2021 Elsevier Ltd. All rights reserved.

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