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首页> 外文期刊>Small >Electrophoretic build-up of alternately multilayered films and micropatterns based on graphene sheets and nanoparticles and their applications in flexible supercapacitors
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Electrophoretic build-up of alternately multilayered films and micropatterns based on graphene sheets and nanoparticles and their applications in flexible supercapacitors

机译:基于石墨烯片和纳米颗粒的交替多层膜和微图案的电泳构建及其在柔性超级电容器中的应用

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摘要

Graphene nanosheets and metal nanoparticles(NPs) have been used as nano-building-blocks for assembly into macroscale hybrid structures with promising performance in electrical devices. However, in most graphene and metal NP hybrid structures, the graphene sheets and metal NPs(e.g., AuNPs) do not enable control of the reaction process, orientation of building blocks, and organization at the nanoscale. Here, an electrophoretic layer-by-layer assembly for constructing multilayered reduced graphene oxide(RGO)/AuNP films and lateral micropatterns is presented. This assembly method allows easy control of the nano-architecture of building blocks along the normal direction of the film, including the number and thickness of RGO and AuNP layers, in addition to control of the lateral orientation of the resultant multilayered structures. Conductivity of multilayered RGO/AuNP hybrid nano-architecture shows great improvement caused by a bridging effect of the AuNPs along the out-of-plane direction between the upper and lower RGO layers. The results clearly show the potential of electrophoretic build-up in the fabrication of graphene-based alternately multilayered films and patterns. Finally, flexible supercapacitors based on multilayered RGO/AuNP hybrid films are fabricated, and excellent performance, such as high energy and power densities, are achieved.
机译:石墨烯纳米片和金属纳米粒子(NPs)已被用作纳米构建块,用于组装成在电气设备中具有良好性能的大型混合结构。但是,在大多数石墨烯和金属NP杂化结构中,石墨烯片和金属NP(例如AuNPs)无法控制反应过程,结构单元的取向和纳米级的组织。在此,提出了一种用于构建多层还原氧化石墨烯(RGO)/ AuNP薄膜和横向微图案的电泳逐层组件。除了控制所得多层结构的横向取向之外,这种组装方法还允许容易地控制沿着膜的法线方向的构件的纳米结构,包括RGO和AuNP层的数量和厚度。多层RGO / AuNP混合纳米结构的电导率显示出很大的改善,这是由于AuNPs在上下RGO层之间沿面外方向的桥接效应所致。结果清楚地表明了在石墨烯基交替多层膜和图案的制造中电泳积累的潜力。最后,制造了基于多层RGO / AuNP混合膜的柔性超级电容器,并获得了出色的性能,例如高能量和功率密度。

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