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一步电泳沉积还原氧化石墨烯和 Ni(OH)2 复合薄膜用于控制超级电容器电极的合成。

One-step electrophoretic deposition of reduced graphene oxide and Ni(OH)2 composite films for controlled syntheses supercapacitor electrodes.

机构信息

Institute of Electrical Engineering, Chinese Academy of Sciences, Beijing 100190, People's Republic of China.

出版信息

J Phys Chem B. 2013 Feb 14;117(6):1616-27. doi: 10.1021/jp305198j. Epub 2012 Oct 9.

Abstract

A facile, rapid, scalable, and environmentally friendly electrophoretic deposition (EPD) approach has been developed for the fabrication of reduced graphene oxide (RGO) and Ni(OH)(2) syntheses based on EPD of graphene oxide (GO) and Ni(NO(3))(2) colloidal suspension. Nickel ion decoration made GO positively charged and further made cathodic EPD feasible. Direct assembly by one-step EPD facilitated transformation from GO to RGO and resulted in multilayer or flower-like RGO/Ni(OH)(2) hybrid films on different substrates. X-ray diffraction analysis suggested that the crystal structures of Ni(OH)(2) depended on the colloidal suspension and the substrate. Further transmission electron microscopy characterization indicated that Ni(OH)(2) nanoclusters composed of 5-10 nm nanoparticles in grain size were homogeneously dispersed and anchored on the RGO. The resulting 100% binder-free RGO/Ni(OH)(2) electrodes exhibited excellent pseudocapacitive behavior with high specific capacitance of 1404 F g(-1) at 2 A g(-1), high rate capability, and good electrochemical cyclic stability. These results paved the way for EPD to produce RGO-based nanocomposite films for high-performance energy storage devices.

摘要

一种简便、快速、可扩展且环境友好的电泳沉积(EPD)方法已被开发出来,用于制造基于氧化石墨烯(GO)和 Ni(NO3)2胶体悬浮液的 EPD 的还原氧化石墨烯(RGO)和 Ni(OH)2合成。镍离子的修饰使 GO 带正电荷,从而使阴极 EPD 成为可能。通过一步 EPD 的直接组装促进了 GO 向 RGO 的转化,并在不同基底上形成了多层或花状 RGO/Ni(OH)2 杂化膜。X 射线衍射分析表明,Ni(OH)2 的晶体结构取决于胶体悬浮液和基底。进一步的透射电子显微镜表征表明,Ni(OH)2 纳米簇由 5-10nm 粒径的纳米颗粒组成,均匀分散并锚定在 RGO 上。所得的 100%无粘结剂 RGO/Ni(OH)2 电极具有优异的赝电容性能,在 2A g-1 时比电容高达 1404F g-1,具有高倍率性能和良好的电化学循环稳定性。这些结果为 EPD 生产用于高性能储能器件的基于 RGO 的纳米复合材料薄膜铺平了道路。

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