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Mechanically Strong Graphene/Aramid Nanofiber Composite Electrodes for Structural Energy and Power

机译:机械强化石墨烯/芳纶纳米纤维复合电极,用于结构能量和功率

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摘要

Structural energy and power systems offer both mechanical and electrochemical performance in a single multifunctional platform. These are of growing interest because they potentially offer reduction in mass and/or volume for aircraft, satellites, and ground transportation. To this end, flexible graphene-based supercapacitors have attracted much attention due to their extraordinary mechanical and electrical properties, yet they suffer from poor strength. This problem may be exacerbated with the inclusion of functional guest materials, often yielding strengths of <15 MPa. Here, we show that graphene paper supercapacitor electrodes containing aramid nanofibers as guest materials exhibit extraordinarily high tensile strength (100.6 MPa) and excellent electrochemical stability. This is achieved by extensive hydrogen bonding and pi-pi interactions between the graphene sheets and aramid nanofibers. The trade-off between capacitance and mechanical properties is evaluated as a function of aramid nanofiber loading, where it is shown that these electrodes exhibit multifunctionality superior to that of other graphene-based supercapacitors, nearly rivaling those of graphene-based pseudocapacitors. We anticipate these composite electrodes to be a starting point for structural energy and power systems that harness the mechanical properties of aramid nanofibers.
机译:结构能量和电力系统在单个多功能平台中提供机械和电化学性能。这些兴趣日益增长,因为它们可能会为飞机,卫星和地面运输的质量和/或体积减少。为此,由于其非凡的机电性能,柔性石墨烯的超级电容器引起了很多关注,但它们的强度较差。包含功能性的客体材料可以加剧这个问题,通常会产生<15MPa的强度。在这里,我们表明,作为客体材料的含有芳族聚酰胺纳米纤维的石墨烯纸超级电容器电极表现出极高的抗拉强度(100.6MPa)和优异的电化学稳定性。这是通过广泛的氢键和石墨烯片和芳族聚酰胺纳米纤维之间的氢键合和PI-PI相互作用来实现。电容和机械性能之间的折衷被评价为芳族纳米纤维载荷的函数,示出了这些电极表现出优于其他石墨烯的超级电容器的多功能性,几乎靶向基于石墨烯的假偶联器。我们预期这些复合电极是结构能量和动力系统的起点,其利用芳纶纳米纤维的机械性能。

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