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在分散体中通过溶剂诱导自组装将氧化石墨烯片卷起。

Rolling up graphene oxide sheets through solvent-induced self-assembly in dispersions.

机构信息

Department of Chemical Engineering, Laboratory of Advanced Materials (MOE), Tsinghua University, Beijing, P. R. China.

出版信息

Nanoscale. 2018 Feb 22;10(8):4113-4122. doi: 10.1039/c7nr08415c.

DOI:10.1039/c7nr08415c
PMID:29435534
Abstract

Herein we report a new approach to fabricating nanoscrolls through the self-assembly of graphene oxide (GO) sheets in a dispersion. The assembly process for GO nanosheets was induced by the dropwise addition of an appropriate organic solvent such as N,N-dimethylformamide (DMF) into the aqueous dispersion. The results show that nanoscrolls were gradually formed from the GO sheets by rolling-up in a piece-by-piece manner with the increase of the DMF content. The transmission electron microscopic analysis indicates that for a typical case, the nanoscrolls have an average diameter of 242 ± 102 nm at the central part and the interlayer spacing between adjacent GO layers is 0.58 nm. The scrolls were estimated to have 207 turns and include on average 42 pieces of GO sheets per scroll. By this method, GO sheets with different sizes and oxidation degrees were proved to be able to form GO nanoscrolls in a similar way. Moreover, it is interesting that the diffraction efficiency of surface-relief-gratings photoinduced on the film of azo molecular glass was significantly enhanced by doping the GO nanoscrolls with a very low content (0.5 wt%); this suggests a possible new application for the GO scrolls in optical devices. This facile approach, which is also feasible by using other organic solvents such as ethanol, can be used to fabricate GO nanoscrolls for large scale applications in supercapacitors, sensors and other devices.

摘要

在此,我们报告了一种通过氧化石墨烯 (GO) 片在分散体中自组装来制造纳米卷的新方法。GO 纳米片的组装过程是通过将适量的有机溶剂(如 N,N-二甲基甲酰胺 (DMF))逐滴加入到水性分散体中诱导的。结果表明,随着 DMF 含量的增加,纳米卷逐渐从 GO 片上以一片片的方式通过卷绕形成。透射电子显微镜分析表明,对于典型情况,纳米卷在中心部分的平均直径为 242±102nm,相邻 GO 层之间的层间距为 0.58nm。这些卷估计有 207 个圈,每个卷平均包含 42 片 GO 片。通过这种方法,不同尺寸和氧化程度的 GO 片被证明能够以类似的方式形成 GO 纳米卷。此外,有趣的是,通过掺杂非常低含量(0.5wt%)的 GO 纳米卷,光致表面浮雕光栅的衍射效率在偶氮分子玻璃薄膜上显著增强;这表明 GO 卷在光学器件中的应用可能有新的途径。这种简便的方法也可以通过使用其他有机溶剂(如乙醇)来实现,可用于制造用于超级电容器、传感器和其他器件的大规模应用的 GO 纳米卷。

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