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首页> 外文期刊>Advanced Materials >Ultrahigh-Areal-Capacitance Flexible Supercapacitor Electrodes Enabled by Conformal P3MT on Horizontally Aligned Carbon-Nanotube Arrays
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Ultrahigh-Areal-Capacitance Flexible Supercapacitor Electrodes Enabled by Conformal P3MT on Horizontally Aligned Carbon-Nanotube Arrays

机译:通过共形P3MT在水平排列的碳纳米管阵列上实现的超高面积电容柔性超级电容器电极

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摘要

Nanocarbon electronic conductors combined with pseudocapacitive materials, such as conducting polymers, display outstanding electrochemical properties and mechanical flexibility. These characteristics enable the fabrication of flexible electrodes for energy-storage devices; that is, supercapacitors that are wearable or can be formed into shapes that are easily integrated into vehicle parts. To date, most nanocarbon materials such as nanofibers are randomly dispersed as a network in a flexible matrix. This morphology inhibits ion transport, particularly under the high current density necessary for devices requiring high power density. Novel flexible densified horizontally aligned carbon nanotube arrays (HACNTs) with controlled nanomorphology for improved ion transport are introduced and combined with conformally coated poly(3-methylthiophene) (P3MT) conducting polymer to impart pseudocapacitance. The resulting P3MT/HACNT nanocomposite electrodes exhibit high areal capacitance of 3.1 F cm(-2) at 5 mA cm(-2), with areal capacitance remaining at 1.8 F cm(-2) even at a current density of 200 mA cm(-2). The asymmetric supercapacitor cell also delivers more than 1-2 orders of magnitude improvement in both areal energy and power density over state-of-the-art cells. Furthermore, little change in cell performance is observed under high strain, demonstrating the mechanical and electrochemical stability of the electrodes.
机译:纳米碳电子导体与伪电容材料(例如导电聚合物)结合使用,具有出色的电化学性能和机械柔韧性。这些特性使得能够制造用于能量存储装置的柔性电极。就是说,超级电容器是可穿戴的或可以形成易于集成到车辆部件中的形状。迄今为止,大多数纳米碳材料(例如纳米纤维)作为网络随机分散在柔性基质中。这种形态抑制了离子的传输,特别是在要求高功率密度的设备所必需的高电流密度下。引入了具有可控的纳米形态的新型柔性致密的水平排列的碳纳米管阵列(HACNT),用于改善离子传输,并将其与保形涂覆的聚(3-甲基噻吩)(P3MT)导电聚合物相结合以赋予拟电容。所得的P3MT / HACNT纳米复合电极在5 mA cm(-2)处表现出3.1 F cm(-2)的高面电容,即使在200 mA cm( -2)。与最先进的电池相比,非对称超级电容器电池在面积能量和功率密度方面也可提高1-2个数量级以上。此外,在高应变下,电池性能几乎没有变化,证明了电极的机械和电化学稳定性。

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