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水热合成具有 CNT 核/多孔 MnO2 壳层分级结构的 MnO2/CNT 纳米复合材料用于超级电容器。

Hydrothermal synthesis of MnO2/CNT nanocomposite with a CNT core/porous MnO2 sheath hierarchy architecture for supercapacitors.

机构信息

School of Materials Science and Engineering, Nanjing University of Science and Technology, 200 Xiao Ling Wei, Nanjing, 210094, China.

出版信息

Nanoscale Res Lett. 2012 Jan 5;7(1):33. doi: 10.1186/1556-276X-7-33.

Abstract

MnO2/carbon nanotube [CNT] nanocomposites with a CNT core/porous MnO2 sheath hierarchy architecture are synthesized by a simple hydrothermal treatment. X-ray diffraction and Raman spectroscopy analyses reveal that birnessite-type MnO2 is produced through the hydrothermal synthesis. Morphological characterization reveals that three-dimensional hierarchy architecture is built with a highly porous layer consisting of interconnected MnO2 nanoflakes uniformly coated on the CNT surface. The nanocomposite with a composition of 72 wt.% (K0.2MnO2·0.33 H2O)/28 wt.% CNT has a large specific surface area of 237.8 m2/g. Electrochemical properties of the CNT, the pure MnO2, and the MnO2/CNT nanocomposite electrodes are investigated by cyclic voltammetry and electrochemical impedance spectroscopy measurements. The MnO2/CNT nanocomposite electrode exhibits much larger specific capacitance compared with both the CNT electrode and the pure MnO2 electrode and significantly improves rate capability compared to the pure MnO2 electrode. The superior supercapacitive performance of the MnO2/CNT nancomposite electrode is due to its high specific surface area and unique hierarchy architecture which facilitate fast electron and ion transport.

摘要

通过简单的水热处理合成了具有 CNT 核/多孔 MnO2 鞘分层结构的 MnO2/碳纳米管 [CNT] 纳米复合材料。X 射线衍射和拉曼光谱分析表明,通过水热合成生成了钠锰矿型 MnO2。形貌表征表明,通过高度多孔层构建了具有三维分层结构,该层由均匀涂覆在 CNT 表面的互连 MnO2 纳米片组成。组成成分为 72wt%(K0.2MnO2·0.33 H2O)/28wt%CNT 的纳米复合材料具有 237.8 m2/g 的大比表面积。通过循环伏安法和电化学阻抗谱测量研究了 CNT、纯 MnO2 和 MnO2/CNT 纳米复合材料电极的电化学性能。MnO2/CNT 纳米复合材料电极的比电容明显大于 CNT 电极和纯 MnO2 电极,并且与纯 MnO2 电极相比,MnO2/CNT 纳米复合材料电极的倍率性能显著提高。MnO2/CNT 纳米复合材料电极具有优越的超级电容性能,这归因于其高比表面积和独特的分层结构,这有利于快速的电子和离子传输。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/86a6/3292840/5c187ae3ca25/1556-276X-7-33-1.jpg

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