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Flexible Asymmetric Supercapacitors with Ultrahigh Energy Density through Synergistic Design of Electrodes

机译:通过电极协同设计实现超高能量密度的柔性非对称超级电容器

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摘要

Despite being among the most researched energy storage devices, supercapacitors have often suffered from their relatively low operating voltage and energy density, which greatly limit their practical applications. In this work, asymmetric supercapacitors (ASCs) are developed by synergistically designing carbon nanotube composite electrodes with 3D porous structures. The resultant ASC devices exhibit an extended operating voltage of 1.8 V, much higher than that of symmetric supercapacitors (≤1.0 V). Significantly, the obtained ASC devices deliver ultrahigh volumetric energy density as high as 19.8 mWh cm−3 (corresponding to an areal energy density of 198 µWh cm−2), which is the highest value among reported ASC devices. In addition, the ASC devices not only possess outstanding cycling stability and long self‐discharging time, but also exhibit excellent mechanical flexibility under any bending states, even over 5000 bending cycles. The demonstrated flexible ASC devices with high performance are promising to be used as power sources for next‐generation portable and wearable electronics.
机译:尽管超级电容器是研究最多的能量存储设备之一,但它们经常会因其相对较低的工作电压和能量密度而受苦,这极大地限制了其实际应用。在这项工作中,通过协同设计具有3D多孔结构的碳纳米管复合电极,开发出了不对称超级电容器(ASC)。所得的ASC器件具有1.8 V的扩展工作电压,远高于对称超级电容器(≤1.0 V)的工作电压。值得一提的是,所获得的ASC器件可提供高达19.8 mWh cm -3 的超高体积能量密度(相当于198 µWh cm -2 的面能量密度),这是在报告的ASC设备中价值最高。此外,ASC设备不仅具有出色的循环稳定性和较长的自放电时间,而且在任何弯曲状态(甚至超过5000个弯曲循环)下均具有出色的机械柔韧性。已证明的高性能柔性ASC器件有望用作下一代便携式和可穿戴电子设备的电源。

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