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Flexible and Freestanding Supercapacitor Electrodes Based on Nitrogen-Doped Carbon Networks/Graphene/Bacterial Cellulose with Ultrahigh Areal Capacitance

机译:基于氮掺杂碳网络/石墨烯/细菌纤维素的超高面积电容的柔性独立式超级电容器电极

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摘要

Flexible energy-storage devices based on supercapacitors rely largely on the scrupulous design of flexible electrodes with both good electrochemical performance and high mechanical properties. Here, nitrogen-doped carbon nanofiber networks/reduced graphene oxide/bacterial cellulose (N-CNFs/RGO/BC) freestanding paper is first designed as a high-performance, mechanically tough, and bendable electrode for a supercapacitor. The BC is exploited as both a supporting substrate for a large mass loading of 8 mg cm(-2) and a biomass precursor for N-CNFs by pyrolysis. The one-step carbonization treatment not only fabricates the nitrogen-doped three-dimensional (3D) nanostructured carbon composite materials but also forms the reduction of the GO sheets at the same time. The fabricated paper electrode exhibits an ultrahigh areal capacitance of 2106 mF cm(-2) (263 F g(-1)) in a KOH electrolyte and 2544 mF cm(-2) (318 F g(-1)) in a H2SO4 electrolyte, exceptional cycling stability (similar to 100% retention after 20000 cycles), and excellent tensile strength (40.7 MPa). The symmetric supercapacitor shows a high areal capacitance (810 mF cm(-2) in KOH and 920 mF cm(-2) in H2SO4) and thus delivers a high energy density (0.11 mWh cm(-2) in KOH and 0.29 mWh cm(-2) in H2SO4) and a maximum power density (27 mW cm(-2) in KOH and 37.5 mW cm(-2) in H2SO4). This work shows that the new procedure is a powerful and promising way to design flexible and freestanding supercapacitor electrodes.
机译:基于超级电容器的柔性储能设备在很大程度上依赖于柔性电极的精心设计,该电极既具有良好的电化学性能,又具有较高的机械性能。在此,首先将掺氮碳纳米纤维网络/还原氧化石墨烯/细菌纤维素(N-CNFs / RGO / BC)独立式纸设计为一种高性能,机械强度高且可弯曲的超级电容器电极。 BC既可作为8 mg cm(-2)的大质量负载的支撑基质,又可作为N-CNF通过热解的生物质前体。一步碳化处理不仅制备了氮掺杂的三维(3D)纳米结构碳复合材料,而且同时形成了GO片的还原。制成的纸电极在KOH电解质中显示2106 mF cm(-2)(263 F g(-1))的超高面积电容,在H2SO4中显示2544 mF cm(-2)(318 F g(-1))电解液,出色的循环稳定性(类似于20000次循环后100%的保持力)和出色的拉伸强度(40.7 MPa)。对称超级电容器具有较高的面电容(在KOH中为810 mF cm(-2),在H2SO4中为920 mF cm(-2)),因此提供了高能量密度(在KOH中为0.11 mWh cm(-2)和0.29 mWh cm (-2)在H2SO4中)和最大功率密度(在KOH中为27 mW cm(-2)在H2SO4中为37.5 mW cm(-2))。这项工作表明,新程序是设计灵活且独立的超级电容器电极的强大而有前途的方法。

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