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A Facile Approach to Chemically Modified Graphene and its Polymer Nanocomposites

机译:化学修饰石墨烯及其聚合物纳米复合材料的简便方法

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摘要

A scalable approach for the mass production of chemically modified graphene has yet to be developed, which holds the key to the large-scale production of stable graphene colloids for optical electronics, energy conversion, and storage materials, catalysis, sensors, composites, etc. Here, a facile approach to fabricating covalently modified graphene and its polymer nanocomposites is presented. The method involves: i) employing a common furnace, rather than a furnace installed with a quartz tube and operated in inert gas as required in previous studies, to treat a commercial graphite intercalation compound with thermal shocking and ultrasonication and fabricate graphene platelets (GnPs) with a thickness of 2.51 ± 0.39 nm that contain only 7 at% oxygen; ii) grafting these CnPs with a commercial, long-chain surfactant, which is able to create molecular entanglement with polymer matrixes by taking advantage of the reactions between the epoxide groups of the platelets and the end amine groups of the surfactant, to produce chemically modified graphene platelets (m- CnPs); and iii) solution-mixing m-CnPs with a commonly used polymer to fabricate nanocomposites. These m-CnPs are well dispersed in a polymer with highly improved mechanical properties and a low percolation threshold of electrical conductivity at 0.25 vol%. This novel approach could lead to the future scalable production of graphene and its nanocomposites.
机译:大规模生产化学改性石墨烯的可扩展方法尚未开发,这是大规模生产用于光学电子,能量转换和存储材料,催化,传感器,复合材料等的稳定石墨烯胶体的关键。在这里,提出了一种制造共价改性石墨烯及其聚合物纳米复合材料的简便方法。该方法包括:i)使用普通炉,而不是按照先前研究的要求,使用装有石英管并在惰性气体中运行的炉,通过热冲击和超声处理来处理商业化的石墨插层化合物,并制造石墨烯血小板(GnPs)厚度为2.51±0.39 nm,仅含7 at%的氧气; ii)将这些CnPs用市售的长链表面活性剂接枝,该表面活性剂能够利用血小板的环氧基与表面活性剂的末端胺基之间的反应与聚合物基质发生分子缠结,从而产生化学修饰的石墨烯血小板(m- CnPs); iii)将m-CnP与常用的聚合物溶液混合以制备纳米复合材料。这些m-CnPs很好地分散在聚合物中,具有高度改善的机械性能和0.25 vol%的低电导渗透阈值。这种新颖的方法可能会导致石墨烯及其纳米复合材料的未来可扩展生产。

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  • 来源
    《Advanced Functional Materials》 |2012年第13期|p.2735-2743|共9页
  • 作者单位

    School of Advanced Manufacturing and Mechanical Engineering and Mawson Institute University of South Australia SA5095, Australia;

    Department of Energy Application Engineering Far East University Tainan County 744, Taiwan;

    School of Advanced Manufacturing and Mechanical Engineering and Mawson Institute University of South Australia SA5095, Australia;

    Mawson Institute, University of South Australia SA5095, Australia Prof. L. Zhang Key Laboratory for Nanomaterials Ministry of Education Beijing University of Chemical Technology Beijing 100029, China;

    Mawson Institute, University of South Australia SA5095, Australia Prof. L. Zhang Key Laboratory for Nanomaterials Ministry of Education Beijing University of Chemical Technology Beijing 100029, China;

    School of Advanced Manufacturing and Mechanical Engineering and Mawson Institute University of South Australia SA5095, Australia;

    Faculty of Mechanical Engineering and Manufacturing University of Tun Hussein Onn Malaysia 86400 Batu Pahat, Malaysia;

    School of Advanced Manufacturing and Mechanical Engineering and Mawson Institute University of South Australia SA5095, Australia;

    School of Advanced Manufacturing and Mechanical Engineering and Mawson Institute University of South Australia SA5095, Australia;

    School of Advanced Manufacturing and Mechanical Engineering and Mawson Institute University of South Australia SA5095, Australia,Mawson Institute, University of South Australia SA5095, Australia Prof. L. Zhang Key Laboratory for Nanomaterials Ministry of Education Beijing University of Chemical Technology Beijing 100029, China;

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