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首页> 外文期刊>Journal of Materials Chemistry: An Interdisciplinary Journal dealing with Synthesis, Structures, Properties and Applications of Materials, Particulary Those Associated with Advanced Technology >Synthesis of graphene-multiwalled carbon nanotubes hybrid nanostructure by strengthened electrostatic interaction and its lithium ion battery application
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Synthesis of graphene-multiwalled carbon nanotubes hybrid nanostructure by strengthened electrostatic interaction and its lithium ion battery application

机译:增强静电作用合成石墨烯-多壁碳纳米管杂化纳米结构及其锂离子电池应用

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摘要

We report a novel way of synthesizing graphene-carbon nanotube hybrid nanostructure as an anode for lithium (Li) ion batteries. For this, graphene was prepared by the solar exfoliation of graphite oxide, while multiwalled carbon nanotubes (MWNTs) were prepared by the chemical vapor deposition method. The graphene-MWNT hybrid nanostructure was synthesized by first modifying graphene surface using a cationic polyelectrolyte and MWNT surface with acid functionalization. The hybrid structure was obtained by homogeneous mixing of chemically modified graphene and MWNT constituents. This hybrid nanostructure exhibits higher specific capacity and cyclic stability. The strengthened electrostatic interaction between the positively charged surface of graphene sheets and the negatively charged surface of MWNTs prevents the restacking of graphene sheets that provides a highly accessible area and short diffusion path length for Li-ions. The higher electrical conductivity of MWNTs promotes an easier movement of the electrons within the electrode. The present synthesis scheme recommends a new pathway for large-scale production of novel hybrid carbon nanomaterials for energy storage applications and underlines the importance of preparation routes followed for synthesizing nanomaterials.
机译:我们报告了一种合成石墨烯-碳纳米管杂化纳米结构作为锂(Li)离子电池阳极的新颖方法。为此,通过太阳剥落氧化石墨制备石墨烯,而通过化学气相沉积法制备多壁碳纳米管(MWNT)。石墨烯-MWNT杂化纳米结构是通过首先使用阳离子聚电解质修饰石墨烯表面和酸官能化的MWNT表面而合成的。杂化结构是通过将化学改性的石墨烯和MWNT成分均匀混合而获得的。该杂化纳米结构表现出更高的比容量和循环稳定性。石墨烯片的带正电荷的表面和MWNT的负电荷的表面之间增强的静电相互作用可防止石墨烯片的重新堆叠,从而为锂离子提供高度可及的区域和较短的扩散路径长度。 MWNT的较高电导率促进了电极内电子的更容易移动。本合成方案为大规模生产用于储能应用的新型杂化碳纳米材料提供了一条新途径,并强调了合成纳米材料所遵循的制备路线的重要性。

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