Krukiewicz Katarzyna, Krzywiecki Maciej, Biggs Manus J P, Janas Dawid
CÚRAM - Centre for Research in Medical Devices, National University of Ireland 118 Corrib Village Galway Ireland.
Department of Physical Chemistry and Technology of Polymers, Silesian University of Technology M. Strzody 9 44-100 Gliwice Poland.
RSC Adv. 2018 Aug 30;8(53):30600-30609. doi: 10.1039/c8ra03963a. eCollection 2018 Aug 24.
Carbon nanomaterials show great promise for a wide range of applications due to their excellent physicochemical and electrical properties. Since their discovery, the state-of-the-art has expanded the scope of their application from scientific curiosity to impactful solutions. Due to their tunability, carbon nanomaterials can be processed into a wide range of formulations and significant scope exists to couple carbon structures to electronic and electrochemical applications. In this paper, the electrochemical performance of various types of CNT films, which differ by the number of walls, diameter, chirality and surface chemistry is presented. Especially, chirality-sorted (6,5)- and (7,6)-based CNT films are shown to possess a high charge storage capacity (up to 621.91 mC cm), areal capacitance (262 mF cm), significantly increased effective surface area and advantageous charge/discharge characteristics without addition of any external species, and outperform many other high capacity materials reported in the literature. The results suggest that the control over the CNT structure can lead to the manufacture of macroscopic CNT devices precisely tailored for a wide range of applications, with the focus on energy storage devices and supercapacitors. The sorted CNT macroassemblies show great potential for energy storage technologies to come from R&D laboratories into real life.
由于其优异的物理化学和电学性质,碳纳米材料在广泛的应用领域展现出巨大的潜力。自发现以来,技术的发展已将其应用范围从科学探索扩展到具有影响力的解决方案。由于其可调节性,碳纳米材料可以加工成各种配方,并且在将碳结构与电子和电化学应用相结合方面存在很大的空间。本文介绍了不同类型的碳纳米管薄膜的电化学性能,这些薄膜在管壁数量、直径、手性和表面化学性质方面存在差异。特别是,手性分选的基于(6,5)和(7,6)的碳纳米管薄膜显示出具有高电荷存储容量(高达621.91 mC/cm)、面积电容(262 mF/cm),有效表面积显著增加,且在不添加任何外部物质的情况下具有有利的充放电特性,性能优于文献中报道的许多其他高容量材料。结果表明,对碳纳米管结构的控制可以制造出为广泛应用精确定制的宏观碳纳米管器件,重点是储能器件和超级电容器。分选的碳纳米管宏观组件在使储能技术从研发实验室走向实际应用方面显示出巨大潜力。