Manipulating the electronic and chemical properties of graphene via molecular functionalization

IF 8.7 2区 工程技术 Q1 CHEMISTRY, PHYSICAL Progress in Surface Science Pub Date : 2013-05-01 DOI:10.1016/j.progsurf.2013.02.001
Hong Ying Mao , Yun Hao Lu , Jia Dan Lin , Shu Zhong , Andrew Thye Shen Wee , Wei Chen
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引用次数: 156

Abstract

Graphene, a single atomic layer of sp2-hybridized carbon atoms arranged in a hexagonal structure and the Nobel winning material in 2010, has attracted extensive research attention in the last few years due to its outstanding physical, chemical, electrical, optical and mechanical properties. To further extend its potential applications, intensive research efforts have been devoted to the functionalization of graphene. Examples include improving graphene solubility by attaching different chemical functional groups to its basal plane, modulating the charge carrier type and concentration via surface transfer doping by coating it with various metals films or organic molecules, improving the bio-selectivity by decorating it with different π-conjugated organic molecules, and so on. Different methods have been developed to functionalize graphene. Among them, non-covalent molecular functionalization represents one of the most effective and promising methods. The extended π-conjugation is largely preserved without creating extensive structural defects on the graphene sheet, thereby retaining the high charge carrier mobility. In this review, a brief summary about different functionalization methods of graphene and its derivatives by covalent and non-covalent interactions will be presented, with particular focus on the non-covalent molecular functionalization. A broad review of the applications of non-covalently functionalized graphene and its derivatives will be presented in detail, including field-effect-transistors, organic optoelectronics, and molecular sensing.

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通过分子功能化来操纵石墨烯的电子和化学性质
石墨烯是一种由sp2杂化碳原子组成的六角形单原子层,是2010年获得诺贝尔奖的材料,由于其出色的物理、化学、电学、光学和机械性能,近年来引起了广泛的研究关注。为了进一步扩展其潜在的应用,人们对石墨烯的功能化进行了大量的研究。例如,通过在石墨烯基面上附着不同的化学官能团来提高石墨烯的溶解度;通过在石墨烯表面涂覆各种金属薄膜或有机分子,通过表面转移掺杂来调节载流子的类型和浓度;通过不同的π共轭有机分子来修饰石墨烯,从而提高石墨烯的生物选择性等。人们已经开发了不同的方法来功能化石墨烯。其中,非共价分子功能化是最有效和最有前途的方法之一。扩展π共轭在很大程度上被保留,而不会在石墨烯片上产生广泛的结构缺陷,从而保持了高载流子迁移率。本文简要介绍了石墨烯及其衍生物的共价和非共价相互作用的不同功能化方法,重点介绍了非共价分子功能化方法。本文将详细介绍非共价功能化石墨烯及其衍生物的应用,包括场效应晶体管、有机光电子学和分子传感。
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来源期刊
Progress in Surface Science
Progress in Surface Science 工程技术-物理:凝聚态物理
CiteScore
11.30
自引率
0.00%
发文量
10
审稿时长
3 months
期刊介绍: Progress in Surface Science publishes progress reports and review articles by invited authors of international stature. The papers are aimed at surface scientists and cover various aspects of surface science. Papers in the new section Progress Highlights, are more concise and general at the same time, and are aimed at all scientists. Because of the transdisciplinary nature of surface science, topics are chosen for their timeliness from across the wide spectrum of scientific and engineering subjects. The journal strives to promote the exchange of ideas between surface scientists in the various areas. Authors are encouraged to write articles that are of relevance and interest to both established surface scientists and newcomers in the field.
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