Xiao Xuan, Song Lei, Wang Qianli, Wang Zhicheng, Wang Hongyan, Chu Juncai, Liu Jianmin, Liu Xinru, Bian Zhentao, Zhao Xuanxuan
Anhui Key Laboratory of Spin Electron and Nanomaterials (Cultivating Base), Bio-based Functional Materials and Composite Technology Research Center, School of Chemistry and Chemical Engineering, Suzhou University Suzhou 234000 PR China
Chemical Technology, Institute of Chemical Technology, China University of Mining &Technology XuZhou Jiangsu 221116 PR China.
RSC Adv. 2022 May 31;12(25):16257-16266. doi: 10.1039/d2ra02141b. eCollection 2022 May 23.
In this paper, hollow-tubular porous carbons were synthesized from abundant biomass Cycas fluff (CF) through simple carbonization followed by an NaHCO mild activation process. After activation, the tubular structure of the CF was retained, and a hierarchical structure of micropores, mesopores and macropores was formed. When the optimal mass ratio of NaHCO/CF is 2, the obtained porous carbon CF-HPC-2 sample has a large specific surface area (SSA) of 516.70 m g in Brunauer-Emmett-Teller (BET) tests and a total pore volume of 0.33 cm g. The C, O, N and S contents of CF-HPC-2 were tested as 91.77 at%, 4.09 at%, 3.54 at%, and 0.6 at%, respectively, by elemental analysis. Remarkably, CF-HPC-2 exhibits a high volume capacitance (349.1 F cm at 1 A g) as well as a higher rate capability than other biomass carbon materials (289.1 F cm at 10 A g). Additionally, the energy density of the CF-HPC-2 based symmetric supercapacitor in 2 M NaSO electrolyte at 20 kW kg is 27.72 W h kg. The particular hollow tubular morphology and activated porous structure determine the excellent electrochemical performance of the material. Hence, this synthetic method provides a new way of storing energy for porous carbon as high volumetric capacitance supercapacitor materials.
在本文中,通过简单碳化然后进行NaHCO温和活化过程,从丰富的生物质苏铁绒毛(CF)合成了中空管状多孔碳。活化后,CF的管状结构得以保留,并形成了微孔、中孔和大孔的分级结构。当NaHCO/CF的最佳质量比为2时,在布鲁诺尔-埃米特-泰勒(BET)测试中获得的多孔碳CF-HPC-2样品具有516.70 m²/g的大比表面积(SSA)和0.33 cm³/g的总孔体积。通过元素分析测试,CF-HPC-2的C、O、N和S含量分别为91.77 at%、4.09 at%、3.54 at%和0.6 at%。值得注意的是,CF-HPC-2表现出高体积电容(在1 A/g时为349.1 F/cm³)以及比其他生物质碳材料更高的倍率性能(在10 A/g时为289.1 F/cm³)。此外,基于CF-HPC-2的对称超级电容器在2 M Na₂SO₄电解质中、20 kW/kg时的能量密度为27.72 W h/kg。独特的中空管状形态和活化的多孔结构决定了该材料优异的电化学性能。因此,这种合成方法为作为高体积电容超级电容器材料的多孔碳提供了一种新的储能方式。