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GRAPHENE AND GRAPHENE-BASED NANOCOMPOSITES: SYNTHESIS AND SUPERCAPACITOR APPLICATIONS

机译:基于石墨烯和石墨烯的纳米复合材料:合成和超级电容器应用

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Graphene, a single-atomic-thick sheet, consists of sp~2-bonded carbon atoms in hexagonal lattice and possesses excellent physical and chemical properties such as high surface area, conductivity, mechanical strength and lightweight. The two-dimensional geometry of graphene nanosheets is ideal for many applications especially in electrochemical energy storage. However, the large-scale production of graphene materials is still a bottleneck limiting the development of advanced energy storage devices. The production of graphene oxide is one of the most critical restrictions in term of synthesis of graphene by wet chemical methods. We have demonstrated the synthesis of high quality graphene oxide by simple chemical reactions with less exo-therm involved without emission of toxic gases, which is more favorable than conventional methods for commercialized synthesis of graphene materials (Figure 1.). Meanwhile, pseudo-capacitive materials such as Co_3O_4 and MnSn(OH)_6 coupled with graphene nanosheets were synthesized by soft chemical methods in order to utilize both advantages from electrical double layer and pseudo-mechanisms. Their electrochemical properties were evaluated and the potential applications used as high performance electrodes for capacitive energy storage were discussed as well.
机译:石墨烯,单个原子厚板,由六边形晶格中的SP〜2键合碳原子组成,具有优异的物理和化学性质,如高表面积,电导率,机械强度和轻质。石墨烯纳米片的二维几何形状对于特别是在电化学能量存储中的许多应用中是理想的理想选择。然而,石墨烯材料的大规模生产仍然是限制高级储能设备的发展的瓶颈。石墨烯的产量是通过湿化学方法合成石墨烯的最关键限制之一。我们已经通过简单的化学反应证实了高质量的石墨烯氧化物的合成,较少的exo-Therm,无毒性气体排放,这比以商业化的石墨烯材料合成的常规方法更有利(图1.)。同时,通过软化学方法合成诸如CO_3O_4和MNSN(OH)(OH)_6的伪电容材料,如CO_3O_4和MNSN(OH)_6,以利用来自电双层和伪机构的两种优点。评估其电化学性质,并且还讨论了用作电容性能存储的高性能电极的潜在应用。

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