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Carbon Nanotube-Bridged Graphene 3D Building Blocks for Ultrafast Compact Supercapacitors

机译:用于超快紧凑型超级电容器的碳纳米管桥接石墨烯3D构建块

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The main obstacles to achieving high electrochemical energy density while retaining high power density are the trade-offs of energy versus power and gravimetric versus volumetric density. Optimizing structural parameters is the key to circumvent these trade-offs. We report here the synthesis of carbon nanotube (CNT)-bridged graphene 3D building blocks via the Coulombic interaction between positively charged CNTs grafted by cationic surfactants and negatively charged graphene oxide sheets, followed by KOH activation. The CNTs were intercalated into the nanoporous graphene layers to build pillared 3D structures, which enhance accessible surface area and allow fast ion diffusion. The resulting graphene/CNT films are free-standing and flexible with a high electrical conductivity of 39?400 S m(1) and a reasonable mass density of 1.06 g cm(3). The supercapacitors fabricated using these films exhibit an outstanding electrochemical performance in an ionic liquid electrolyte with a maximum energy density of 117.2 Wh L-1 or 110.6 Wh kg(1) at a maximum power density of 424 kW L-1 or 400 kW kg(1), which is based on thickness or mass of total active material.
机译:在保持高功率密度的同时实现高电化学能量密度的主要障碍是能量对功率与重量对体积密度之间的权衡。优化结构参数是避免这些折衷的关键。我们在这里报告通过阳离子表面活性剂接枝的带正电的CNT与带负电的氧化石墨烯片之间的库仑相互作用,然后通过KOH活化来合成碳纳米管(CNT)桥接的石墨烯3D构建块。将CNT插入纳米多孔石墨烯层中以构建带柱状的3D结构,该结构可增加可访问的表面积并允许快速的离子扩散。所得的石墨烯/ CNT膜是独立的且具有挠性,具有39?400 S m(1)的高电导率和1.06 g cm(3)的合理质量密度。使用这些膜制造的超级电容器在离子液体电解质中表现出出色的电化学性能,最大能量密度为424 kW L-1或400 kW kg(最大能量密度为117.2 Wh L-1或110.6 Wh kg(1)。 1),基于总活性材料的厚度或质量。

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