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由可再生酚醛树脂和埃洛石纳米管制备多孔碳纳米复合材料及其性能

Preparation and Performance of Porous Carbon Nanocomposite from Renewable Phenolic Resin and Halloysite Nanotube.

作者信息

Yang Xiaomeng, Zeng Xiaorui, Han Guihong, Sui Dong, Song Xiangyu, Zhang Yongsheng

机构信息

School of Chemical Engineering, Zhengzhou University, Zhengzhou 450001, China.

Zhengzhou No. 9 High School, 21 Nongye Road, Zhengzhou 450002, China.

出版信息

Nanomaterials (Basel). 2020 Aug 29;10(9):1703. doi: 10.3390/nano10091703.

Abstract

The growing demand for high performance from supercapacitors has inspired the development of porous nanocomposites using renewable and naturally available materials. In this work, a formaldehyde-free phenolic resin using monosaccharide-based furfural was synthesized to act as the carbon precursor. One dimensional halloysite nanotube (HNT) with high porosity and excellent cation/anion exchange capacity was mixed with the phenol-furfural resin to fabricate carbonaceous nanocomposite HNT/C. Their structure and porosity were characterized. The effects of the halloysite nanotube amount and carbonization temperature on the electrochemical properties of HNT/C were explored. HNT/C exhibited rich porosity, involving a large specific surface area 253 m·g with a total pore volume of 0.27 cm·g. The electrochemical performance of HNT/C was characterized in the three-electrode system and showed enhanced specific capacitance of 146 F·g at 0.2 A g (68 F·g for pristine carbon) in electrolyte (6 mol·L KOH) and a good rate capability of 62% at 3 A g. It also displayed excellent cycle performance with capacitance retention of 98.5% after 500 cycles. The symmetric supercapacitors with HNT/C-1:1.5-800 electrodes were fabricated, exhibiting a high energy density of 20.28 Wh·Kg at a power density of 100 W·Kg in 1 M NaSO electrolyte. The present work provides a feasible method for preparing composite electrode materials with a porous structure from renewable phenol-furfural resin and HNT. The excellent supercapacitance highlights the potential applications of HNT/C in energy storage.

摘要

对超级电容器高性能的需求不断增长,激发了使用可再生和天然可用材料开发多孔纳米复合材料的研究。在这项工作中,合成了一种使用基于单糖的糠醛的无甲醛酚醛树脂作为碳前驱体。将具有高孔隙率和优异阳离子/阴离子交换能力的一维埃洛石纳米管(HNT)与酚醛糠醛树脂混合,制备了碳质纳米复合材料HNT/C。对其结构和孔隙率进行了表征。探讨了埃洛石纳米管用量和碳化温度对HNT/C电化学性能的影响。HNT/C表现出丰富的孔隙率,比表面积为253 m²·g,总孔体积为0.27 cm³·g。在三电极体系中对HNT/C的电化学性能进行了表征,在0.2 A g(原始碳为68 F·g)的电解液(6 mol·L KOH)中,其比电容提高到146 F·g,在3 A g时具有62%的良好倍率性能。它还表现出优异的循环性能,500次循环后电容保持率为98.5%。制备了具有HNT/C-1:1.5-800电极的对称超级电容器,在1 M NaSO电解液中,功率密度为100 W·Kg时,能量密度高达20.28 Wh·Kg。本工作为利用可再生酚醛糠醛树脂和HNT制备具有多孔结构的复合电极材料提供了一种可行的方法。优异的超级电容性能突出了HNT/C在储能领域的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e225/7560184/8ea635c6dfcb/nanomaterials-10-01703-g007.jpg

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