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Three-Dimensional Expanded Graphene-Metal Oxide Film via Solid-State Microwave Irradiation for Aqueous Asymmetric Supercapacitors

机译:固态微波辐照水不对称超级电容器的三维膨胀石墨烯-金属氧化物薄膜

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摘要

Carbon-based electrochemical double-layer capacitors and pseudocapacitors, consisting of a symmetric configuration of electrodes, can deliver much higher power densities than batteries, but they suffer from low energy densities. Herein, we report the development of high energy and power density supercapacitors using an asymmetric configuration of Fe2O3 and MnO2 nanoparticles incorporated into 3D macroporous graphene film electrodes that can be operated in a safe and low-cost aqueous electrolyte. The gap in working potential windows of Fe2O3 and MnO2 enables the stable expansion of the cell voltage up to 1.8 V, which is responsible for the high energy density (41.7 Wh kg(-1)). We employ a household microwave oven to simultaneously create conductivity, porosity, and the deposition of metal oxides on graphene films toward 3D hybrid architectures, which lead to a high power density (13.5 kW kg(-1)). Such high energy and power densities are maintained for over 5000 cycles, even during cycling at a high current density of 16.9 A g(-1).
机译:由电极对称配置组成的碳基电化学双层电容器和伪电容器可提供比电池更高的功率密度,但它们的能量密度低。在这里,我们报告了高能量和功率密度超级电容器的发展,该技术使用了3D大孔石墨烯薄膜电极中掺入的Fe2O3和MnO2纳米颗粒的不对称结构,可以在安全且低成本的水性电解质中运行。 Fe2O3和MnO2的工作电势窗口中的间隙可使电池电压稳定扩展至1.8 V,这是高能量密度(41.7 Wh kg(-1))的原因。我们采用家用微波炉来同时产生导电性,孔隙率,并向3D混合架构在石墨烯薄膜上沉积金属氧化物,这导致了高功率密度(13.5 kW kg(-1))。即使在以16.9 A g(-1)的高电流密度循环时,也可以保持这样高的能量和功率密度超过5000个循环。

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