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将多壁碳纳米管切割并展开成弯曲的石墨烯纳米片及其增强的超级电容器性能。

Cutting and unzipping multiwalled carbon nanotubes into curved graphene nanosheets and their enhanced supercapacitor performance.

机构信息

Department of Chemistry, Tongji University, Shanghai 200092, China.

出版信息

ACS Appl Mater Interfaces. 2012 Dec;4(12):6827-34. doi: 10.1021/am302000z. Epub 2012 Nov 26.

DOI:10.1021/am302000z
PMID:23148646
Abstract

We report a remarkable transformation of multiwalled carbon nanotubes (MWCNTs) to curved graphene nanosheets (CGN) by the Hummers method. Through this simple process, MWCNTs can be cut and unzipped in the transverse and longitudinal directions, respectively. The as-obtained CGN possess the unique hybrid structure of 1D nanotube and 2D graphene. Such a particular structure together with the improved effective surface area affords high specific capacitance and good cycling stability during the charge-discharge process when used as supercapacitor electrodes. The electrochemical measurements show that CGN exhibit higher capacitive properties than pristine MWCNTs in three different types of aqueous electrolytes, 1 M KOH, 1 M H(2)SO(4), and 1 M Na(2)SO(4). A specific capacitance of as high as 256 F g(-1) at a current density of 0.3 A g(-1) is achieved over the CGN material. The improved capacitance may be attributed to high accessibility to electrolyte ions, extended defect density, and increased effective surface area. Meanwhile, this high-yield production of graphene from low cost MWCNTs is important for the scalable synthesis and industrial application of graphene. Furthermore, this novel CGN nanostructure could also be promisingly applied in many fields such as nanoelectronics, sensors, nanocomposites, batteries, and gas storage.

摘要

我们通过 Hummers 法报道了多壁碳纳米管(MWCNTs)向弯曲石墨烯纳米片(CGN)的显著转化。通过这个简单的过程,MWCNTs 可以分别在横向和纵向被切割和展开。所得到的 CGN 具有独特的 1D 纳米管和 2D 石墨烯的混合结构。这种特殊的结构以及改进的有效表面积在用作超级电容器电极时,在充放电过程中提供了高比电容和良好的循环稳定性。电化学测量表明,CGN 在三种不同的水性电解质中,即 1 M KOH、1 M H(2)SO(4)和 1 M Na(2)SO(4)中,比原始 MWCNTs 具有更高的电容性能。在 0.3 A g(-1)的电流密度下,CGN 材料的比电容高达 256 F g(-1)。这种改进的电容可能归因于电解质离子的高可及性、扩展的缺陷密度和增加的有效表面积。同时,这种从低成本 MWCNTs 中高产率生产石墨烯对于石墨烯的可扩展合成和工业应用非常重要。此外,这种新型 CGN 纳米结构还可能在纳米电子、传感器、纳米复合材料、电池和气体存储等许多领域得到有前景的应用。

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