| Literature DB >> 28736956 |
Weili Zhang1, Chuan Xu2, Chaoqun Ma2, Guoxian Li2, Yuzuo Wang2, Kaiyu Zhang1, Feng Li2, Chang Liu2, Hui-Ming Cheng2, Youwei Du1, Nujiang Tang1, Wencai Ren2.
Abstract
An N-superdoped 3D graphene network structure with an N-doping level up to 15.8 at% for high-performance supercapacitor is designed and synthesized, in which the graphene foam with high conductivity acts as skeleton and nested with N-superdoped reduced graphene oxide arogels. This material shows a highly conductive interconnected 3D porous structure (3.33 S cm-1 ), large surface area (583 m2 g-1 ), low internal resistance (0.4 Ω), good wettability, and a great number of active sites. Because of the multiple synergistic effects of these features, the supercapacitors based on this material show a remarkably excellent electrochemical behavior with a high specific capacitance (of up to 380, 332, and 245 F g-1 in alkaline, acidic, and neutral electrolytes measured in three-electrode configuration, respectively, 297 F g-1 in alkaline electrolytes measured in two-electrode configuration), good rate capability, excellent cycling stability (93.5% retention after 4600 cycles), and low internal resistance (0.4 Ω), resulting in high power density with proper high energy density.Entities:
Keywords: electrochemical behaviors; graphene foams; highly conductive; nitrogen-superdoping; reduced graphene oxide
Year: 2017 PMID: 28736956 DOI: 10.1002/adma.201701677
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849