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用于可控且可重现功能化的纳米结构化石墨烯。

Nanostructuring graphene for controlled and reproducible functionalization.

作者信息

Mali Kunal S, Greenwood John, Adisoejoso Jinne, Phillipson Roald, De Feyter Steven

机构信息

KU Leuven-University of Leuven, Department of Chemistry, Division of Molecular Imaging and Photonics Celestijnenlaan 200F, B-3001 Leuven, Belgium.

出版信息

Nanoscale. 2015 Feb 7;7(5):1566-85. doi: 10.1039/c4nr06470d.

Abstract

The 'graphene rush' that started almost a decade ago is far from over. The dazzling properties of graphene have long warranted a number of applications in various domains of science and technology. Harnessing the exceptional properties of graphene for practical applications however has proved to be a massive task. Apart from the challenges associated with the large-scale production of the material, the intrinsic zero band gap, the inherently low reactivity and solubility of pristine graphene preclude its use in several high- as well as low-end applications. One of the potential solutions to these problems is the surface functionalization of graphene using organic building blocks. The 'surface-only' nature of graphene allows the manipulation of its properties not only by covalent chemical modification but also via non-covalent interactions with organic molecules. Significant amount of research efforts have been directed towards the development of functionalization protocols for modifying the structural, electronic, and chemical properties of graphene. This feature article provides a glimpse of recent progress in the molecular functionalization of surface supported graphene using non-covalent as well as covalent chemistry.

摘要

近十年前兴起的“石墨烯热潮”远未结束。长期以来,石墨烯令人瞩目的特性使其在多个科技领域有着诸多应用前景。然而,要将石墨烯的优异特性应用于实际却被证明是一项艰巨的任务。除了与该材料大规模生产相关的挑战外,本征零带隙、原始石墨烯固有的低反应活性和溶解性使其无法应用于多种高端及低端应用。解决这些问题的潜在方案之一是使用有机结构单元对石墨烯进行表面功能化。石墨烯的“仅表面”性质使得不仅可以通过共价化学修饰,还能通过与有机分子的非共价相互作用来调控其性质。大量研究工作致力于开发用于修饰石墨烯结构、电子和化学性质的功能化方案。这篇专题文章简要介绍了利用非共价及共价化学对表面负载石墨烯进行分子功能化的最新进展。

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