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Activated Carbon Fibers with Hierarchical Nanostructure Derived from Waste Cotton Gloves as High-Performance Electrodes for Supercapacitors

机译:废棉手套衍生的具有分级纳米结构的活性炭纤维作为超级电容器的高性能电极

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摘要

One of the most challenging issues that restrict the biomass/waste-based nanocarbons in supercapacitor application is the poor structural inheritability during the activating process. Herein, we prepare a class of activated carbon fibers by carefully selecting waste cotton glove (CG) as the precursor, which mainly consists of cellulose fibers that can be transformed to carbon along with good inheritability of their fiber morphology upon activation. As prepared, the CG-based activated carbon fiber (CGACF) demonstrates a surface area of 1435 m2 g−1 contributed by micropores of 1.3 nm and small mesopores of 2.7 nm, while the fiber morphology can be well inherited from the CG with 3D interconnected frameworks created on the fiber surface. This hierarchically porous structure and well-retained fiber-like skeleton can simultaneously minimize the diffusion/transfer resistance of the electrolyte and electron, respectively, and maximize the surface area utilization for charge accumulation. Consequently, CGACF presents a higher specific capacitance of 218 F g−1 and an excellent high-rate performance as compared to commercial activated carbon.
机译:在超级电容器应用中限制生物质/废物基纳米碳的最具挑战性的问题之一是在激活过程中不良的结构遗传性。在本文中,我们通过仔细选择废棉手套(CG)作为前体来制备一类活性炭纤维,该手套主要由可以转化为碳的纤维素纤维以及活化后纤维形态的良好遗传性组成。制备后,基于CG的活性炭纤维(CGACF)的表面积为1435 m 2 g -1 由1.3nm的微孔和2.7nm的小中孔贡献,而纤维形态可以通过在纤维表面上创建的3D互连框架很好地继承自CG。这种分层的多孔结构和良好保留的纤维状骨架可以同时分别最小化电解质和电子的扩散/转移电阻,并最大化用于电荷积累的表面积利用率。因此,与商用活性炭相比,CGACF具有更高的218 F g -1 的比电容和出色的高倍率性能。

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