通过电纺制造的聚丙烯腈基碳纳米纤维电极用于超级电容器

Sumit Dubal, Sachin S. Chavan, Gaurav Lohar, P. Lokhande, Udayabhaskar Rednam, Deepak Kumar
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引用次数: 0

摘要

电纺纳米碳纤维作为超级电容器的电极材料,其多功能特性日益受到关注。在电极制造过程中,碳化前的热处理稳定化过程起着重要作用。在本研究中,电纺稳定聚丙烯腈纳米纤维(St PAN)和在最低温度下碳化的聚丙烯腈纳米纤维(CNF)被用作超级电容器电极的活性物质。稳定的 CNF 纳米纤维样品显示,随着碳比例的增加,纳米纤维直径减小。XRD 结果显示,与稳定 PAN 样品相比,CNF 样品的结晶度有所提高。电化学表征用于测量比电容和分析电荷存储机制。利用邓恩模型估算了电容和扩散控制对能量存储的贡献比例。结果表明,与 St PAN 电极相比,CNF 电极的电容控制贡献更大。与 St PAN 样品相比,CNF 样品的电容贡献增加了 82.3%。这项研究提供了一种制作电纺碳纳米纤维电极的方法,以及一种检测电荷存储过程的方法学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Polyacrylonitrile-based carbon nanofiber electrode fabricated via electrospun for supercapacitor application
The versatile properties of electrospun carbon nanofibers gaining attention for electrode materials for supercapacitors. The heat treatment process of stabilization played an important role before the carbonization process in electrode fabrication. In the present study, electrospun stabilized polyacrylonitrile nanofiber (St PAN) and carbonized Polyacrylonitrile nanofiber (CNF) at minimum temperature were used as active mass for supercapacitor electrodes. Stabilized CNF nanofiber sample showed a reduction in nanofiber diameter with increased carbon percentage. XRD results showed increased crystallinity in the CNF sample as compared with the Stabilized PAN sample. Electrochemical characterization was performed to measure specific capacitance and to analyze the charge storage mechanism. The proportion of capacitive and diffusion-controlled contributions to energy storage was estimated using Dunn’s model. The results obtained demonstrated that, in comparison to the St PAN electrode, the CNF electrode exhibited a greater capacitive-controlled contribution. The CNF sample has shown an increased capacitive contribution of 82.3% as compared with the St PAN sample. This work provides a method for making electrospun carbon nanofiber-based electrodes as well as a methodical methodology for examining the charge storage process.
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