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Activated carbons prepared by indirect and direct CO_2 activation of lignocellulosic biomass for supercapacitor electrodes

机译:通过间接和直接CO_2对超级电容器电极进行间接和直接CO_2活化制备的活性炭

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Lignocellulosic biomass was converted into hierarchical porous carbon by using a physical activation technique under a carbon dioxide environment. Both direct and indirect CO(2 )activation routes were utilized to investigate the effect of processing parameters and the kinetics of the activation. The porosity, surface chemistry, and morphology of the activated carbons were characterized in addition to their proximate and ultimate analyses. This was followed by the preparation of the activated carbon electrodes and the fabrication and electrochemical testing of these electrodes within a symmetrical supercapacitor cell. The results showed a dominant microporous structure along with the limited content of larger pores for the activated carbons prepared via both direct and indirect activation. Along with the preserved natural pore structure of the biomass, an engineered pore structure was achieved which is highly beneficial for the supercapacitors with respect to the transport and storage of ions. The morphological analysis also revealed their tortuous porous structure. The maximum specific capacitances of 80.9 and 92.7 F/g at the current density of 100 mA/g were achieved after direct and indirect activation routes, respectively. The surface functional groups were also found to play a significant role in the resultant electrochemical performance of the supercapacitors. (C) 2020 Elsevier Ltd. All rights reserved.
机译:通过在二氧化碳环境下使用物理活化技术将木质纤维素生物质转化为分层多孔碳。利用直接和间接CO(2)激活路线来研究加工参数和激活动力学的效果。除了近似和最终分析之外,活性碳的孔隙率,表面化学和形态学的特征是。然后通过在对称的超级电容器细胞内制备活性炭电极和这些电极的制造和电化学测试。结果表明,通过直接和间接激活制备的活性碳的较大孔的含量有限的微孔结构。除了保存的生物质的自然孔结构之外,实现了一种工程化孔结构,这对于超级电容器相对于离子的运输和储存非常有益。形态学分析还揭示了它们的曲折多孔结构。在直接和间接的激活途径之后,实现了在电流密度为100mA / g的80.9和92.7 f / g的最大特定电容。还发现表面官能团在超级电容器的所得电化学性能中起显着作用。 (c)2020 elestvier有限公司保留所有权利。

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