• 文献标题:   Fluorine-doped graphene oxide prepared by direct plasma treatment for supercapacitor application
  • 文献类型:   Article
  • 作  者:   SIM Y, SURENDRAN S, CHA H, CHOI H, JE M, YOO S, SEOK DC, JUNG YH, JEON C, KIM DJ, HAN MK, CHOI H, SIM U, MOON J
  • 作者关键词:   semiionic cf bonding, fluorinedoped graphene oxide, graphene oxide, plasma treatment, hybrid supercapacitor
  • 出版物名称:   CHEMICAL ENGINEERING JOURNAL
  • ISSN:   1385-8947 EI 1873-3212
  • 通讯作者地址:  
  • 被引频次:   22
  • DOI:   10.1016/j.cej.2021.132086 EA SEP 2021
  • 出版年:   2022

▎ 摘  要

Charge storage in supercapacitors is strongly related to the bond characteristics and electronic structure of electrode materials. Graphene-based materials are widely used in a supercapacitor due to the easily tunable properties and high surface/volume ratios. However, we claim that the typical covalent bond characteristics of 2D carbon materials originating from this 2p pi orbital is not very suitable to the application in supercapacitor. Here, we suggest an efficient way to improve the supercapacitor performance by tuning the covalency of bonding between the graphene-based electrode and potassium ion. We, for the first time, also introduce a simple solventfree scale-up doping technique to prepare fluorine-doped graphene oxide (FGO) by direct plasma treatment on graphene oxide (GO) powder at ambient pressure. The FGO enabled fast electrochemical charge transfer and provided a large number of active sites for redox reactions during supercapacitor operation, and those mechanisms were thoroughly studied by various electrochemical analyses. As a result, the fabricated symmetric supercapacitor using FGO electrodes exhibited a maximum power density (-3200 W/kg) and energy density (-25.87 Wh/kg) with superior cycle stability (20000 cycles) without capacitance loss. Furthermore, the computational calculation results clarified the roles of semi-ionic C-F bonding of FGO: huge charge accumulation on the electrodes and superior electrical conductivity. Thus, our study demonstrates a facile strategy to develop promising functionalized materials, which can enhance the viability of supercapacitor for the next generation of energy storage systems.