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Self-assembled three-dimensional macroscopic graphene/MXene-based hydrogel as electrode for supercapacitor

机译:自组装的三维宏观石墨烯/ MXENE基水凝胶作为超级电容器电极

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Hydrogels with unique three-dimensional (3D) macroscopic porous architectures are attractive electrode materials for supercapacitors because of their superior electrolyte permeabilities and rapid electron/ion transports. In this letter, a cylindrical-type 3D macroscopic graphene/MXene-based hydrogel (GMH) is prepared by self-assembling laminar-structured graphene oxide (GO) and MXene (Ti3C2) nanosheets via a facile one-step hydrothermal method under the existence of ammonia water and hydrazine hydrate. GO is found to self-converge into a 3D macroscopic porous graphene framework during the hydrothermal process, while Ti3C2 nanosheets are able to prevent the graphene nanosheets from self-restacking. The as-prepared GMH shows a larger specific surface area of 161.1 m2 g?1 and a higher pore volume of 0.5 cm3 g?1 in comparison with the pure graphene hydrogel. A symmetric supercapacitor utilizing GMH as electrodes exhibits high energy densities of 9.3 Wh kg?1 and 5.7 Wh kg?1 at different power densities of 500 W kg?1 and 5000 W kg?1, respectively, as well as an outstanding long-term cycle stability with no loss in capacitance in excess of 10 000 continuous charge–discharge cycles. The strategy of preparation of a 3D macroscopic GMH is expected to realize promising high-performance hydrogel electrodes based on graphene and MXene for electrochemical energy storages.
机译:具有独特三维(3D)宏观多孔架构的水凝胶是超级电容器的吸引电极材料,因为它们的电解质渗透率和快速的电子/离子输送。在这封信中,通过在存在下通过自组装层状结构石墨烯氧化物(GO)和MXENE(TI3C2)纳米晶片来制备圆柱形型3D宏观石墨烯/ mXENE类水凝胶(GMH)氨水和肼水合物。在水热过程中发现进入3D宏观多孔石墨烯框架中的自汇聚,而Ti3C2纳米液能够防止石墨烯纳米液自重接口。与纯石墨烯水凝胶相比,如制备的制备的GMH显示出161.1m 2 G = 1的比表面积为161.1m 2 G = 1,较高的孔体积为0.5cm 3×1。利用GMH作为电极的对称超级电容器表现出9.3WH kg?1和5.7 Wh kgα1的高能量密度分别为500 w kg?1和5000 w kg?1,以及优秀的长期循环稳定性,电容中没有损耗超过10 000连续充电 - 放电循环。预计3D宏观GMH的制备策略将实现基于石墨烯和MXENE用于电化学能量储存的高性能水凝胶电极。

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