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用于电化学双层电容器中多孔碳纳米纤维电极的6FDA-均四甲苯纳米纤维的表面交联

Surface crosslinking of 6FDA-durene nanofibers for porous carbon nanofiber electrodes in electrochemical double layer capacitors.

作者信息

Kim So Jeong, Son Ye Ji, Jeon Byeongil, Han Yoon Soo, Kim Young-Jin, Jung Kyung-Hye

机构信息

School of Advanced Materials and Chemical Engineering, Daegu Catholic University, Gyeongsan-si, Gyeongbuk, Republic of Korea.

出版信息

Nanotechnology. 2020 May 22;31(21):215404. doi: 10.1088/1361-6528/ab73bb. Epub 2020 Feb 7.

DOI:10.1088/1361-6528/ab73bb
PMID:32032014
Abstract

Tailoring the chemical structures of a precursor polymer for carbon nanofibers (CNFs) produced by thermal treatment of electrospun nanofibers was studied to prepare the electrodes for electrochemical double layer capacitors (EDLCs). To improve energy storage performance of CNF electrodes, 6FDA-durene nanofibers were crosslinked by a vapor crosslinking method, and subsequently carbonized. Chemical modification via crosslinking was confirmed by FTIR spectra while the conversion of crosslinked 6FDA-durene into carbon was done by Raman spectroscopy. Electrochemical performance of these CNF electrodes was evaluated by assembling coin cells, and the CNFs derived from crosslinked 6FDA-durene nanofibers showed higher specific capacitances, energy densities and cycling stability than those from non-crosslinked ones. It was also shown that CNFs prepared using 1 min crosslinking exhibit the highest energy storage performances, a specific capacitance of 301 F g (at 10 mV s), and the maximum energy density of 11.1 Wh kg (at 0.5 A g) and power density of 1.8 kW kg (at 6 A g). Surface area and porosity of CNFs, which is critical for the performance of EDLC electrodes, were studied by nitrogen adsorption/desorption measurements, and it was clearly seen that surface crosslinking of precursor polymers improved surface properties of the resultant CNFs.

摘要

为制备用于电化学双层电容器(EDLC)的电极,研究了对通过静电纺丝纳米纤维热处理制备的碳纳米纤维(CNF)前驱体聚合物的化学结构进行定制。为提高CNF电极的储能性能,采用气相交联法对6FDA-均苯四甲酸二酐纳米纤维进行交联,随后进行碳化。通过傅里叶变换红外光谱(FTIR)证实了交联的化学改性,同时通过拉曼光谱对交联的6FDA-均苯四甲酸二酐向碳的转化进行了研究。通过组装扣式电池评估了这些CNF电极的电化学性能,结果表明,交联的6FDA-均苯四甲酸二酐纳米纤维衍生的CNF比未交联的CNF具有更高的比电容、能量密度和循环稳定性。研究还表明,采用1分钟交联制备的CNF具有最高的储能性能,比电容为301 F g(在10 mV s时),最大能量密度为11.1 Wh kg(在0.5 A g时),功率密度为1.8 kW kg(在6 A g时)。通过氮气吸附/脱附测量研究了对EDLC电极性能至关重要的CNF的表面积和孔隙率,结果清楚地表明,前驱体聚合物的表面交联改善了所得CNF的表面性能。

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引用本文的文献

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Preparation of Porous Carbon Nanofiber Electrodes Derived from 6FDA-Durene/PVDF Blends and Their Electrochemical Properties.源自6FDA-均苯四甲酸二酐/聚偏氟乙烯共混物的多孔碳纳米纤维电极的制备及其电化学性能
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2
Preparation and Electrochemical Properties of Porous Carbon Nanofiber Electrodes Derived from New Precursor Polymer: 6FDA-TFMB.源自新型前驱体聚合物6FDA-TFMB的多孔碳纳米纤维电极的制备及其电化学性质
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