Jiang Xia, Liu Chao, Shi Gaofeng, Wang Guoying, Wang Zhao, Jia Shiming, Dong Yucan, Mishra Puranjan, Tian Haoqi, Liu Yanrong
School of Petrochemical Engineering, Lanzhou University of Technology Lanzhou China
Gansu Vocational College of Agriculture Lanzhou China.
RSC Adv. 2019 Jul 29;9(40):23324-23333. doi: 10.1039/c9ra03361k. eCollection 2019 Jul 23.
Carbon nanofibers (CNFs) have been widely used in electrochemical energy storage devices because of their excellent conductivity, extremely large surface area and structural stability. Herein, we obtained a viscous, liquefied bio-stalk carbon the simple chemical treatment of biomass, and mixed it with polyacrylonitrile to prepare a spinning solution. Subsequent electrospinning and high temperature activation resulted in the successful preparation of liquefied lignin-based activated carbon nanofibers. The as-prepared liquefied bio-stalk carbon nanofibers exhibited an outstanding electrochemical performance (specific capacitance of 273 F g at 0.5 A g current density), and a capacitance retention of 210 F g even under a large current density of 10 A g. Besides its high specific capacitance and outstanding rate capability, the symmetrical supercapacitor cell based on the liquefied carbon-based nanofiber electrodes also exhibited an excellent cycling performance with 92.76% capacitance retention after 5000 charge-discharge cycles. This study provides a new strategy for the future development of supercapacitor electrode materials and enhances the development of biomass energy.
碳纳米纤维(CNFs)因其优异的导电性、极大的表面积和结构稳定性,已被广泛应用于电化学储能装置。在此,我们通过对生物质进行简单的化学处理得到了一种粘性的、液化的生物秸秆碳,并将其与聚丙烯腈混合制备了纺丝溶液。随后的静电纺丝和高温活化成功制备了液化木质素基活性炭纳米纤维。所制备的液化生物秸秆碳纳米纤维表现出优异的电化学性能(在0.5 A g电流密度下比电容为273 F g),甚至在10 A g的大电流密度下电容保持率仍为210 F g。除了高比电容和出色的倍率性能外,基于液化碳基纳米纤维电极的对称超级电容器单元还表现出优异的循环性能,在5000次充放电循环后电容保持率为92.76%。本研究为超级电容器电极材料的未来发展提供了一种新策略,并促进了生物质能源的发展。