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High-performance symmetric supercapacitors based on carbon nanotube/graphite nanofiber nanocomposites

机译:基于碳纳米管/石墨纳米纤维纳米复合材料的高性能对称超级电容器

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This work reports the nanocomposites of graphitic nanofibers (GNFs) and carbon nanotubes (CNTs) as the electrode material for supercapacitors. The hybrid CNTs/GNFs was prepared via a synthesis route that involved catalytic chemical vapor deposition (CVD) method. The structure and morphology of CNTs/GNFs can be precisely controlled by adjusting the flow rates of reactant gases. The nest shape entanglement of CNTs and GNFs which could not only have high conductivity to facilitate ion transmission, but could also increase surface area for more electrolyte ions access. When assembled in a symmetric two-electrode system, the CNTs/GNFs-based supercapacitor showed a very good cycling stability of 96% after 10 000 charge/discharge cycles. Moreover, CNTs/GNFs-based symmetric device can deliver a maximum specific energy of 72.2?Wh?kg?1 at a power density of 686.0?W?kg?1. The high performance of the hybrid performance can be attributed to the wheat like GNFs which provide sufficient accessible sites for charge storage, and the CNTs skeleton which provide channels for charge transport.
机译:该工作将石墨纳米纤维(GNFS)和碳纳米管(CNT)的纳米复合材料报告为超级电容器的电极材料。通过涉及催化化学气相沉积(CVD)方法的合成途径制备杂化CNTS / GNF。可以通过调节反应气体的流速来精确控制CNT / GNF的结构和形态。 CNT和GNF的巢形状纠缠,其不仅可以具有高导电性,以便于离子传输,但也可以增加更多电解质离子接入的表面积。当组装在对称的双电极系统中时,基于CNT / GNFS的超级电容器在10 000次充电/放电循环后显示出非常好的循环稳定性为96%。此外,基于CNT / GNFS的对称装置可以在功率密度为686.0Ω·kg≤1的最大特定能量。混合性能的高性能可以归因于GNF等小麦,其为电荷存储提供足够的可接近部位,以及为电荷传输提供通道的CNT骨架。

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