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Design and synthesis of NiCo2O4-reduced graphene oxide composites for high performance supercapacitors

机译:高性能超级电容器用NiCo2O4还原的氧化石墨烯复合材料的设计与合成

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In the present work, we used charge-bearing nanosheets as building blocks to construct a binary composite composed of NiCo2O4 and reduced graphene oxide (RGO). Co-Ni hydroxides intercalated by p-aminobenzoate (PABA) ion and graphite oxide (GO) were exfoliated into positively charged hydroxide nanosheets and negatively charged graphene oxide nanosheets in water, respectively, and then these oppositely charged nanosheets were assembled to form heterostructured nanohybrids through electrostatic interactions. The subsequent thermal treatment led to the transformation of the hydroxide nanosheets into spinel NiCo2O4 and also to the reduction of graphene oxide. The as-obtained NiCo2O4-RGO composite exhibits an initial specific capacitance of 835 F g~(-1) at a specific current of 1 A g~(-1) and 615 F g~(-1) at 20 A g~(-1). More interestingly, the specific capacitance of the composite increases with cycling numbers, reaches 1050 F g~(-1) at 450 cycles and remains at 908 F g~(-1) (higher than the initial value) after 4000 cycles. The high specific capacitance, remarkable rate capability and excellent cycling ability of the composites mean that they show promise for application in supercapacitors. Comparison with the capacitive behavior of pure NiCo2O4 and NiCo2O4 mechanically mixed with RGO displays the importance of the self-assembly of the nanosheets in making a wide range of graphene-based composite materials for applications in electrochemical energy storage.
机译:在目前的工作中,我们使用带电荷的纳米片作为构建基来构建由NiCo2O4和还原氧化石墨烯(RGO)组成的二元复合材料。将对氨基苯甲酸酯(PABA)离子和氧化石墨(GO)插入的Co-Ni氢氧化物分别剥离成带正电的氢氧化物纳米片和带负电的氧化石墨烯纳米片,然后组装这些带相反电荷的纳米片,通过静电相互作用。随后的热处理导致氢氧化物纳米片转变为尖晶石NiCo2O4,还导致氧化石墨烯的还原。所获得的NiCo2O4-RGO复合材料在1 A g〜(-1)的比电流和20 A g〜(615 F g〜(-1)的比电流下表现出835 F g〜(-1)的初始比电容。 -1)。更有趣的是,复合材料的比电容随循环次数增加,在450个循环时达到1050 F g〜(-1),在4000个循环后仍保持在908 F g〜(-1)(高于初始值)。复合材料的高比电容,出色的倍率能力和出色的循环能力意味着它们有望在超级电容器中应用。与纯NiCo2O4和机械混合RGO的NiCo2O4的电容行为进行比较,显示出纳米片材的自组装在制造广泛的用于电化学储能的石墨烯基复合材料中的重要性。

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