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石墨烯氧化物在界面处的自组装。

Self-assembly of graphene oxide at interfaces.

机构信息

School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300072, P. R. China; The Synergistic Innovation Center of Chemistry and Chemical Engineering of Tianjin, Tianjin, 300072, China.

出版信息

Adv Mater. 2014 Aug 27;26(32):5586-612. doi: 10.1002/adma.201400267. Epub 2014 May 23.

Abstract

Due to its amphiphilic property, graphene oxide (GO) can achieve a variety of nanostructures with different morphologies (for example membranes, hydrogel, crumpled particles, hollow spheres, sack-cargo particles, Pickering emulsions, and so on) by self-assembly. The self-assembly is mostly derived from the self-concentration of GO sheets at various interfaces, including liquid-air, liquid-liquid and liquid-solid interfaces. This paper gives a comprehensive review of these assembly phenomena of GO at the three types of interfaces, the derived interfacial self-assembly techniques, and the as-obtained assembled materials and their properties. The interfacial self-assembly of GO, enabled by its fantastic features including the amphiphilicity, the negatively charged nature, abundant oxygen-containing groups and two-dimensional flexibility, is highlighted as an easy and well-controlled strategy for the design and preparation of functionalized carbon materials, and the use of self-assembly for uniform hybridization is addressed for preparing hybrid carbon materials with various functions. A number of new exciting and potential applications are also presented for the assembled GO-based materials. This contribution concludes with some personal perspectives on future challenges before interfacial self-assembly may become a major strategy for the application-targeted design and preparation of functionalized carbon materials.

摘要

由于其两亲性,氧化石墨烯(GO)可以通过自组装实现各种具有不同形态的纳米结构(例如膜、水凝胶、皱缩颗粒、空心球、袋状颗粒、Pickering 乳液等)。自组装主要源自 GO 片在各种界面(包括气-液、液-液和液-固界面)处的自浓缩。本文全面综述了 GO 在这三种界面处的组装现象、衍生的界面自组装技术以及获得的组装材料及其性能。GO 的界面自组装,得益于其两亲性、带负电荷的性质、丰富的含氧基团和二维柔韧性等奇妙特性,是设计和制备功能化碳材料的一种简便且易于控制的策略,并且通过自组装实现均匀的杂化用于制备具有各种功能的杂化碳材料。还为基于组装 GO 的材料呈现了一些新的令人兴奋的潜在应用。本文在界面自组装可能成为功能化碳材料有针对性设计和制备的主要策略之前,对未来的挑战提出了一些个人看法。

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