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Nanostructured cobalt hydroxide thin films as high performance pseudocapacitor electrodes by graphene oxide wrapping

机译:纳米结构氢氧化钴薄膜通过氧化石墨烯包裹作为高性能伪电容器电极

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We synthesized binder-free Co(OH)(2) nanocrystals on nickel electrodes by the ammonia transfer method in an aqueous solution and kinetically-controlled their thickness and height to enhance the capacitance through the facile diffusion of electrolytes in the nanocrystals. As thinner Co(OH)(2) films were developed, the specific capacitance increased up to 1260 F g(-1) at a current density of 10 A g(-1). A thin layer of graphene oxide (GO) was used to wrap the Co(OH)(2) nanocrystals to create a pseudocapacitor with high specific capacitance and good cyclic stability. This synthetic strategy enabled us to maximize the electrochemical cell performance, reaching a specific capacitance of 2710 F g(-1) under 10 A g(-1). The GO coating provides an effective method to increase adhesion on the nickel electrodes and to reduce the decomposition of Co(OH)(2) during the charge-discharge process under high pH conditions. The prepared GO/Co(OH)(2) nanocomposite layers provided not only high electron mobility but also ionic conductivity, especially when operated at a high current density.
机译:我们通过水溶液中的氨转移法在镍电极上合成了无粘结剂的Co(OH)(2)纳米晶体,并通过动力学控制其厚度和高度,通过电解质在纳米晶体中的快速扩散来增强电容。随着较薄的Co(OH)(2)薄膜的开发,在10 A g(-1)的电流密度下,比电容增加至1260 F g(-1)。氧化石墨烯(GO)的薄层用于包裹Co(OH)(2)纳米晶体,以创建具有高比电容和良好循环稳定性的伪电容器。这种合成策略使我们能够最大化电化学电池的性能,在10 A g(-1)下达到2710 F g(-1)的比电容。 GO涂层提供了一种有效的方法,可以提高在高pH条件下充放电过程中镍电极上的附着力并减少Co(OH)(2)的分解。制备的GO / Co(OH)(2)纳米复合材料层不仅提供高电子迁移率,而且提供离子电导率,特别是在高电流密度下运行时。

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