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Effect of rGO Coating on Interconnected Co3O4 Nanosheets and Improved Supercapacitive Behavior of Co3O4/rGO/NF Architecture

机译:rGO涂层对互连的Co3O4纳米片的影响以及改进的Co3O4 / rGO / NF结构的超电容行为

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摘要

In this study, the effect of reduced graphene oxide (rGO) on interconnected Co3O4 nanosheets and the improved supercapacitive behaviors is reported. By optimizing the experimental parameters, we achieved a specific capacitance of ~1016.4 F g−1 for the Co3O4/rGO/NF (nickel foam) system at a current density of 1 A g−1. However, the Co3O4/NF structure without rGO only delivers a specific capacitance of ~520.0 F g−1 at the same current density. The stability test demonstrates that Co3O4/rGO/NF retains ~95.5% of the initial capacitance value even after 3000 charge–discharge cycles at a high current density of 7 A g−1. Further investigation reveals that capacitance improvement for the Co3O4/rGO/NF structure is mainly because of a higher specific surface area (~87.8 m2 g−1) and a more optimal mesoporous size (4–15 nm) compared to the corresponding values of 67.1 m2 g−1 and 6–25 nm, respectively, for the Co3O4/NF structure. rGO and the thinner Co3O4 nanosheets benefit from the strain relaxation during the charge and discharge processes, improving the cycling stability of Co3O4/rGO/NF.
机译:在这项研究中,报告了还原的氧化石墨烯(rGO)对互连的Co3O4纳米片的影响和改善的超电容性能。通过优化实验参数,在电流密度为1A g -1的情况下,Co3O4 / rGO / NF(镍泡沫)系统的比电容达到〜1016.4F g -1 。但是,没有rGO的Co3O4 / NF结构在相同的电流密度下只能提供约520.0 F·g -1 的比电容。稳定性测试表明,即使在7A g -1 的高电流密度下进行3000次充放电循环后,Co3O4 / rGO / NF仍保留约95.5%的初始电容值。进一步的研究表明,Co3O4 / rGO / NF结构的电容改善主要是由于较高的比表面积(〜87.8 m 2 g -1 )和更优化的比表面积与Co3O4 / NF结构的中孔尺寸(4-15 nm)相比,相应的值分别为67.1 nm 2 g -1 和6-25 nm。 rGO和更薄的Co3O4纳米片受益于充电和放电过程中的应变松弛,从而提高了Co3O4 / rGO / NF的循环稳定性。

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