Xia Liaoyuan, Hu Shaoheng, Zhang Xueqin, Huang Le, Liao Yu, Qing Yan, Wu Yiqiang, Jiang Wenping, Lu Xihong
College of Material Science and Engineering, Central South University of Forestry and Technology Changsha 410004 P. R. China
Hunan Province Key Laboratory of Materials Surface & Interface Science and Technology, Central South University of Forestry and Technology Changsha 410004 P. R. China
RSC Adv. 2019 Apr 26;9(23):12877-12885. doi: 10.1039/c9ra01164a. eCollection 2019 Apr 25.
Three-dimensional (3D) electrode materials are ideal candidates for use in fabricating high-performance supercapacitors (SCs), owing to their unique network structure and excellent electrochemical properties. In this study, an aerogel film produced by the freeze-drying self-aggregation of multiwall carbon nanotubes (MWCNTs) and cellulose nanofibers (CNFs) served as the "skin", and an inter-connected 3D network of nickel foam (NF) as the "framework", for the fabrication of an MWCNT/CNF-NF (called MCN) hybrid material with a distinct "skin-framework" architecture. Considering the metrics of excellent conductivity, high wettability, binder-free and unique 3D "skin-framework" structure, the MCN hybrid material has great potential as an electroactive material platform in constructing state-of-the-art asymmetric supercapacitor (ASC) electrodes. By incorporating MCN with electroactive manganese dioxide (MnO) and active carbon (AC), MnO-MCN and AC-MCN composite electrodes with respective high areal capacitances of 1784.8 (equal to 469.7 F g) and 868.8 mF cm (equal to 126.3 F g) at 5 mA cm were successfully prepared. Further, both kinds of electrodes exhibited high charge/discharge ability rates and good cycle performance. Moreover, an optimally assembled MnO-MCN//AC-MCN solid-state ASC was reversibly charged/discharged at voltages as high as 1.8 V and possessed a remarkable volumetric capacity of 9.83 F cm and an energy density of 4.25 mW h cm, as well as good cycle stability.
三维(3D)电极材料因其独特的网络结构和优异的电化学性能,是制造高性能超级电容器(SCs)的理想选择。在本研究中,由多壁碳纳米管(MWCNTs)和纤维素纳米纤维(CNFs)的冷冻干燥自聚集产生的气凝胶膜用作“皮肤”,而泡沫镍(NF)的互连3D网络作为“框架”,用于制造具有独特“皮肤-框架”结构的MWCNT/CNF-NF(称为MCN)混合材料。考虑到优异的导电性、高润湿性、无粘结剂和独特的3D“皮肤-框架”结构等指标,MCN混合材料作为一种电活性材料平台在构建先进的不对称超级电容器(ASC)电极方面具有巨大潜力。通过将MCN与电活性二氧化锰(MnO)和活性炭(AC)结合,成功制备了在5 mA cm下分别具有1784.8(相当于469.7 F g)和868.8 mF cm(相当于126.3 F g)的高面积电容的MnO-MCN和AC-MCN复合电极。此外,这两种电极都表现出高的充/放电倍率能力和良好的循环性能。此外,优化组装的MnO-MCN//AC-MCN固态ASC在高达1.8 V的电压下可逆地充/放电,具有9.83 F cm的显著体积容量和4.25 mW h cm的能量密度,以及良好的循环稳定性。