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通过“自上而下”的方法制造出在超级电容器中具有与碳纳米管和石墨烯相当电容的商业碳纤维布。

Making a commercial carbon fiber cloth having comparable capacitances to carbon nanotubes and graphene in supercapacitors through a "top-down" approach.

作者信息

Zhang Tianchang, Kim Christine H J, Cheng Yingwen, Ma Yanwen, Zhang Hongbo, Liu Jie

机构信息

Center for the Environmental Implications of NanoTechnology, Duke University, Durham, North Carolina 27708, USA.

出版信息

Nanoscale. 2015 Feb 21;7(7):3285-91. doi: 10.1039/c4nr06812b.

DOI:10.1039/c4nr06812b
PMID:25623779
Abstract

A "top-down" and scalable approach for processing carbon fiber cloth (CFC) into flexible and all-carbon electrodes with remarkable areal capacity and cyclic stability was developed. CFC is commercially available in large quantities but its use as an electrode material in supercapacitors is not satisfactory. The approach demonstrated in this work is based on the sequential treatment of CFC with KOH activation and high temperature annealing that can effectively improve its specific surface area to a remarkable 2780 m(2) g(-1) while at the same time achieving a good electrical conductivity of 320 S m(-1) without sacrificing its intrinsic mechanical strength and flexibility. The processed CFC can be directly used as an electrode for supercapacitors without any binders, conductive additives and current collectors while avoiding elaborate electrode processing steps to deliver a specific capacitance of ∼0.5 F cm(-2) and ∼197 F g(-1) with remarkable rate performance and excellent cyclic stability. The properties of these processed CFCs are comparable or better than graphene and carbon nanotube based electrodes. We further demonstrate symmetric solid-state supercapacitors based on these processed CFCs with very good flexibility. This "top-down" and scalable approach can be readily applied to other types of commercially available carbon materials and therefore can have a substantial significance for high performance supercapacitor devices.

摘要

开发了一种“自上而下”且可扩展的方法,用于将碳纤维布(CFC)加工成具有出色面积容量和循环稳定性的柔性全碳电极。CFC有大量商业供应,但其作为超级电容器的电极材料并不理想。这项工作中展示的方法基于对CFC依次进行KOH活化和高温退火处理,这可以有效地将其比表面积显著提高到2780 m² g⁻¹,同时在不牺牲其固有机械强度和柔韧性的情况下实现320 S m⁻¹的良好电导率。加工后的CFC无需任何粘合剂、导电添加剂和集流体即可直接用作超级电容器的电极,同时避免了复杂的电极加工步骤,以提供约0.5 F cm⁻²和约197 F g⁻¹的比电容,具有出色的倍率性能和优异的循环稳定性。这些加工后的CFC的性能与基于石墨烯和碳纳米管的电极相当或更好。我们进一步展示了基于这些加工后的CFC的具有非常好柔韧性的对称固态超级电容器。这种“自上而下”且可扩展的方法可以很容易地应用于其他类型的商业可用碳材料,因此对于高性能超级电容器器件具有重要意义。

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