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Asymmetric supercapacitors based on 3D graphene-wrapped V2O5 nanospheres and Fe3O4@3D graphene electrodes with high power and energy densities

机译:基于3D石墨烯包裹的V2O5纳米球和FE3O4 @ 3D石墨烯电极具有高功率和能量密度的非对称超级电容器

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Asymmetric supercapacitor (ASC) devices are emerging as effective high-performance energy storage systems. We report on the synthesis of novel and green electrode materials and their use to construct high performance ASCs. The assembled ASCs are based on 3D porous graphene-wrapped V2O5 nanospheres as the positive electrode and Fe3O4@graphene as the negative electrode. The optimal ratio of the V2O5 nanospheres intercalated graphene sheets in the composite electrodes was identified. Compared to all positive electrode formulations, the V2O5@3DGr (33%) hybrid electrode achieved the highest specific capacitance (612.5 Fg(-1)) at a current density of 1.0 A g(-1). Based on the excellent electrochemical behavior of the fabricated electrodes, the assembled asymmetric supercapacitor devices of V2O5@3DGr//Fe3O4@3DGr exhibited a maximum energy density of 54.9 Wh kg(-1) with a power density of 898 Wkg(-1) with an extended voltage of 1.8 V in 1.0 M Na2SO4 aqueous electrolyte. Furthermore, the ASC device demonstrated excellent cycling stability with 89.6% capacitance retention over 10,000 cycles. The outstanding electrochemical performance of the fabricated electrodes can be attributed to the synergic effect between graphene sheets and metal oxides (V2O5, F3O4) sandwich network structures. Interestingly, the proposed asymmetric electrode materials provide a promising strategy for integrating low cost transition metal, green electrolyte, high energy, and power densities of supercapacitor devices and that can bridge the gap with commercial batteries. (C) 2019 Elsevier Ltd. All rights reserved.
机译:非对称超级电容器(ASC)设备是有效的高性能储能系统的兴起。我们报告了新型和绿色电极材料的合成及其用于构建高性能ASC的用途。组装的ASCS基于3D多孔石墨烯包裹的V2O5纳米球,作为正极和Fe3O4 @石墨烯作为负极。鉴定了复合电极中的V2O5纳米纳米嵌入的石墨烯片的最佳比率。与所有正电极配方相比,V2O5 @ 3DGR(33%)混合电极以1.0Ag(-1)的电流密度实现了最高的特定电容(612.5fg(-1))。基于制造电极的优异电化学行为,V2O5 @ 3DGR // FE3O4 @ 3DGR的组装不对称超级电容器装置表现出54.9WH kg(-1)的最大能量密度,功率密度为898WKG(-1) 1.0M Na 2 SO 4水电解质中的延长电压为1.8V。此外,ASC器件显示出优异的循环稳定性,电容滞留超过10,000个循环率为89.6%。制造电极的出色电化学性能可归因于石墨烯片和金属氧化物(V2O5,F3O4)夹层网络结构之间的协同效应。有趣的是,所提出的不对称电极材料提供了用于整合低成本过渡金属,绿色电解质,高能量和超级电容器的电力密度的有希望的策略,并且可以将间隙与商用电池桥接。 (c)2019 Elsevier Ltd.保留所有权利。

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