JOURNAL ARTICLE

Dual Support System Ensuring Porous Co–Al Hydroxide Nanosheets with Ultrahigh Rate Performance and High Energy Density for Supercapacitors

Xiaoliang WuLili JiangConglai LongTong WeiZhuangjun Fan

Year: 2015 Journal:   Advanced Functional Materials Vol: 25 (11)Pages: 1648-1655   Publisher: Wiley

Abstract

Layered double hydroxides (LDHs) are promising supercapacitor electrode materials due to their high specific capacitances. However, their electrochemical performances such as rate performance and energy density at a high current density, are rather poor. Accordingly, a facile strategy is demonstrated for the synthesis of the integrated porous Co–Al hydroxide nanosheets (named as GSP‐LDH) with dual support system using dodecyl sulfate anions and graphene sheets as structural and conductive supports, respectively. Owing to fast ion/electron transport, porous and integrated structure, the GSP‐LDH electrode exhibits remarkably improved electrochemical characteristics such as high specific capacitance (1043 F g −1 at 1 A g −1 ) and ultra‐high rate performance capability (912 F g −1 at 20 A g −1 ). Moreover, the assembled sandwiched graphene/porous carbon (SGC)//GSP‐LDH asymmetric supercapacitor delivers a high energy density up to 20.4 Wh kg −1 at a very high power density of 9.3 kW kg −1 , higher than those of previously reported asymmetric supercapacitors. The strategy provides a facile and effective method to achieve high rate performance LDH based electrode materials for supercapacitors.

Keywords:
Supercapacitor Materials science Graphene Hydroxide Capacitance Electrochemistry Electrode Chemical engineering Power density Layered double hydroxides Porosity Nanotechnology Current density Energy storage Composite material Power (physics)

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Citation History

Topics

Supercapacitor Materials and Fabrication
Physical Sciences →  Materials Science →  Electronic, Optical and Magnetic Materials
Layered Double Hydroxides Synthesis and Applications
Physical Sciences →  Materials Science →  Materials Chemistry
Advanced battery technologies research
Physical Sciences →  Engineering →  Electrical and Electronic Engineering

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