超级电容器
材料科学
细菌纤维素
硫化镍
气凝胶
化学工程
电容
复合数
循环伏安法
碳纤维
电极
溶解
硫化物
碳化
镍
电化学
纤维素
纳米技术
复合材料
扫描电子显微镜
化学
冶金
物理化学
工程类
作者
Lizeng Zuo,Wei Fan,Youfang Zhang,Yunpeng Huang,Wei Gao,Tianxi Liu
出处
期刊:Nanoscale
[Royal Society of Chemistry]
日期:2017-01-01
卷期号:9 (13): 4445-4455
被引量:81
摘要
Electroactive materials, such as nickel sulfide (NiS), with high theoretical capacities have attracted broad interest to fabricate highly efficient supercapacitors. Preventing aggregation and increasing the conductivity of NiS particles are key challenging tasks to fully achieve excellent electrochemical properties of NiS. One effective approach to solve these problems is to combine NiS with highly porous and conductive carbon materials such as carbon aerogels. In this study, a green and facile method for the in situ growth of NiS particles on bacterial cellulose (BC)-derived sheet-like carbon aerogels (CAs) has been reported. CA prepared by the dissolution–gelation–carbonization process was used as a framework to construct NiS/CA composite aerogels with NiS uniformly decorated on the pore walls of CA. It was found that the NiS/CA composite aerogel electrodes exhibit excellent capacitive performance with high specific capacitance (1606 F g−1), good rate capacitance retention (69% at 10 A g−1), and enhanced cycling stability (91.2% retention after 10 000 continuous cyclic voltammetry cycles at 100 mV s−1). Furthermore, asymmetric supercapacitors (ASCs) were constructed utilizing NiS/CA composite and CA as the positive and negative electrode materials, respectively. Through the synergistic effect of three-dimensional porous structures and conductive networks derived from CA and the high capacitive performance offered by NiS, the ASC device exhibited an energy density of ∼21.5 Wh kg−1 and a power density of 700 W kg−1 at the working voltage of 1.4 V in 2 M KOH aqueous solution. The ASC device also showed excellent long-term cycle stability with ∼87.1% specific capacitance retention after 10 000 cycles of cyclic voltammetry scans. Therefore, the NiS/CA composite shows great potential as a promising alternative to high-performance electrode materials for supercapacitors.
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