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溶剂热一步法合成具有超高电容的用于超级电容器的 Ni-Al 层状双氢氧化物/碳纳米管/还原氧化石墨烯片三元纳米复合材料。

Solvothermal one-step synthesis of Ni-Al layered double hydroxide/carbon nanotube/reduced graphene oxide sheet ternary nanocomposite with ultrahigh capacitance for supercapacitors.

机构信息

Key Laboratory of Superlight Material and Surface Technology, Ministry of Education, Harbin Engineering University, Harbin 150001, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2013 Jun 26;5(12):5443-54. doi: 10.1021/am4003843. Epub 2013 Jun 5.

Abstract

A Ni-Al layered double hydroxide (LDH), mutil-wall carbon nanotube (CNT), and reduced graphene oxide sheet (GNS) ternary nanocomposite electrode material has been developed by a facile one-step ethanol solvothermal method. The obtained LDH/CNT/GNS composite displayed a three-dimensional (3D) architecture with flowerlike Ni-Al LDH/CNT nanocrystallites gradually self-assembled on GNS nanosheets. GNS was used as building blocks to construct 3D nanostructure, and the LDH/CNT nanoflowers in turn separated the two-dimensional (2D) GNS sheets, which preserved the high surface area of GNSs. Furthermore, the generated porous networks with a narrow pore size distribution in the LDH/CNT/GNS composite were also demonstrated by the N2 adsorption/desorption experiment. Such morphology would be favorable to improve the mass transfer and electrochemical action of the electrode. As supercapacitor electrode material, the LDH/CNT/GNS hybrid exhibited excellent electrochemical performance, including ultrahigh specific capacitance (1562 F/g at 5 mA/cm(2)), excellent rate capability, and long-term cycling performance, which could be a promising energy storage/conversion material for supercapacitor application.

摘要

一种 Ni-Al 层状双氢氧化物(LDH)、多壁碳纳米管(CNT)和还原氧化石墨烯片(GNS)三元纳米复合材料电极材料,通过简便的一步乙醇溶剂热法开发而成。所得的 LDH/CNT/GNS 复合材料呈现出具有花状 Ni-Al LDH/CNT 纳米晶逐渐自组装在 GNS 纳米片上的三维(3D)结构。GNS 被用作构建 3D 纳米结构的构建块,而 LDH/CNT 纳米花又将二维(2D)GNS 片分隔开,从而保持了 GNSs 的高表面积。此外,通过 N2 吸附/解吸实验还证明了 LDH/CNT/GNS 复合材料中具有窄孔径分布的多孔网络。这种形态有利于改善电极的传质和电化学作用。作为超级电容器电极材料,LDH/CNT/GNS 杂化物表现出优异的电化学性能,包括超高比电容(在 5 mA/cm2 时为 1562 F/g)、出色的倍率性能和长期循环性能,有望成为超级电容器应用的有前途的能量存储/转换材料。

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