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Excellent Capacitive Performance of a Three‐Dimensional Hierarchical Porous Graphene/Carbon Composite with a Superhigh Surface Area
Authors:Xue Jin Li  Prof Wei Xing  Prof Jin Zhou  Prof Gui Qiang Wang  Prof Shu Ping Zhuo  Prof Zi Feng Yan  Prof Qing Zhong Xue  Prof Shi Zhang Qiao
Institution:1. School of Science, State Key Laboratory of Heavy Oil Processing, China University of Petroleum, Qingdao 266580 (P.R. China), Fax: (+86)?533‐86983579;2. School of Chemical Engineering, Shandong University of Technology, Zibo 255049 (P.R. China);3. School of Chemical Engineering, The University of Adelaide, Adelaide, SA 5005 (Australia)
Abstract:Three‐dimensional hierarchical porous graphene/carbon composite was successfully synthesized from a solution of graphene oxide and a phenolic resin by using a facile and efficient method. The morphology, structure, and surface property of the composite were investigated intensively by a variety of means such as scanning electron microscopy (SEM), transmission electron microscopy (TEM), N2 adsorption, Raman spectroscopy, and Fourier transform infrared spectroscopy (FTIR). It is found that graphene serves as a scaffold to form a hierarchical pore texture in the composite, resulting in its superhigh surface area of 2034 m2g?1, thin macropore wall, and high conductivity (152 S m?1). As evidenced by electrochemical measurements in both EMImBF4 ionic liquid and KOH electrolyte, the composite exhibits ideal capacitive behavior, high capacitance, and excellent rate performance due to its unique structure. In EMImBF4, the composite has a high energy density of up to 50.1 Wh kg?1 and also possesses quite stable cycling stability at 100 °C, suggesting its promising application in high‐temperature supercapacitors. In KOH electrolyte, the specific capacitance of this composite can reach up to an unprecedented value of 186.5 F g?1, even at a very high current density of 50 A g?1, suggesting its prosperous application in high‐power applications.
Keywords:carbon  conducting materials  graphene  supercapacitors  surface chemistry
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