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Ultrathin NiCo2O4 nanosheets assembled on biomass-derived carbon microsheets with polydopamine for high-performance hybrid supercapacitors

机译:超薄NiCO2O4纳米片组装在生物量衍生的碳微圆片上,具有多莫多氨酸,适用于高性能杂交超级电容器

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The hierarchical architecture of biomass activated carbon and metal oxides has attracted wide attention in the field of energy storage owing to its high specific surface area, good electrical conductivity, low cost and environmental friendliness. Herein, biomass carbon-based porous microsheets with thickness of 150-200 nm are obtained by ultrasonic crushing the carbonized poplar catkins (PC) micro-hollow fibers. The carbon microsheets were modified with polydopamine and further deposited with ultrathin nickel cobaltite nanosheets (NiCo2O4 NSs) to form a NiCo2O4 shell-carbon core sandwich composite. Benefiting from its characteristics, as-prepared hybrid electrodes exhibit significantly enhanced specific capacity (922.9C g(-1) at 1 A g(-1)), excellent rate capability and good cycling stability. Furthermore, the hybrid supercapacitor was also fabricated with NiCo2O4 NSs@PD-PC and polydopamine-modified poplar catkins (PD-PC) carbon materials as positive electrode and negative electrode, respectively. It shows remarkable energy-storage characteristics, such as a high energy density of 39.1 W h kg(-1) at the power density of 799.9 W kg(-1), only 4.5% capacity loss after 5000 cycles, as well as a wide potential window of 0-1.6 V. Such excellent performance makes poplar catkins-derived carbon-based electrodes promise as one of the attractive candidates for high performance energy storage devices. (C) 2019 Elsevier Ltd. All rights reserved.
机译:生物质的活性炭和金属氧化物的分层体系结构,吸引了广泛的关注在储能由于其高的比表面积,良好的导电性,成本低,对环境友好的领域。具有150-200纳米厚此,生物质的碳类多孔质microsheets通过超声波破碎碳化杨花(PC)微空心纤维而获得。碳microsheets用聚多巴胺修饰的和进一步用超薄镍钴纳米片(NiCo2O4 NSS)沉积以形成NiCo2O4壳 - 碳芯夹层复合。从它的特性中受益,所制备的混合电极表现出显著增强比容量(在1 A G(922.9C克(-1)-1)),优良的倍率性能和良好的循环稳定性。此外,混合超级电容器也制造成具有NiCo2O4奈米@ PD-PC和聚多巴胺修饰的杨树花序(PD-PC)的碳材料分别作为正极和负极。它显示了显着的能量储存特征,如5000次循环后的39.1 W时千克(-1)的799.9W¯¯公斤的功率密度(-1),只有4.5%的容量损失高能量密度,以及宽的0-1.6 V.这种优良的性能潜力窗口使得杨花衍生碳基电极承诺作为有吸引力的候选高性能能量存储设备中的一个。 (c)2019 Elsevier Ltd.保留所有权利。

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