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A super-thermostable, flexible supercapacitor for ultralight and high performance devices

机译:超级恒温,柔性超级电容器,用于超广大和高性能设备

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The design and optimization of new composite electrolytes and nanostructured carbon electrodes constituting electrochemical energy storage devices such as supercapacitors are definitely important because of the increasing challenges of providing reliable electrical energy in harsh environments. Here, we develop super-thermostable, flexible, and high-performance supercapacitors operating at high temperatures and under mechanical stresses. The multifunctional supercapacitors are fabricated by integrating an ionic liquid-fumed silica nanoparticle composite polymer electrolyte and 3D graphene aerogel electrodes with controlled hybrid porous structures. The thermal and electrochemical stability of the composite polymer electrolyte and excellent compatibility between the electrolyte and the porous aerogel electrodes lead to high-performance supercapacitors with an extremely high specific capacitance of 1007 F g(-1) and an energy density of 1134 W h kg(-1) at a high temperature of 200 degrees C. In a flexibility test in dynamic mode, the device exhibits extreme long-term stability and mechanical durability after bending cycles even at high temperatures. This research provides a rational strategy for light weight, mechanically robust, high-performance, and high-temperature operation energy storage systems operating under harsh circumstances.
机译:由于在恶劣环境中提供可靠的电能的挑战越来越大,新型复合电解质和纳米结构碳电极的设计和优化肯定是重要的。在这里,我们开发出在高温下和机械应力下运行的超级恒温,柔性和高性能的超级电容器。通过将离子液 - 液含二氧化硅纳米粒子复合高分子电解质和3D石墨烯气体电极与受控的混合多孔结构相容,通过将多官能的超级电容器进行制造。复合聚合物电解质的热和电化学稳定性以及电解质和多孔气凝胶电极之间的优异相容性导致高性能超级电容器,具有1007 f G(-1)的极高特异性电容和1134WH kg的能量密度(-1)在高温200℃下。在动态模式的灵活性测试中,即使在高温下,该器件也在弯曲循环后表现出极端的长期稳定性和机械耐久性。本研究提供了在恶劣环境下运行的重量轻,机械稳健,高性能和高温操作储能系统的合理策略。

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