Yujie Zhang, Xu Ren, Ling Liu, Ridong He and Yanfang Gao
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引用次数: 0
Abstract
The development of cost-effective and straightforward methodologies for the fabrication of high-performance electrode materials represents a crucial advancement in the application and evolution of supercapacitors (SCs). Hierarchical porous carbon materials have been considered a type of promising material for SCs owing to their high specific surface area and excellent electronic conductivity. Herein, the synthesis of structurally controllable porous carbons from pomelo peel through carbonization, the template method and activation treatment is reported. In this work, an impedance model was used to evaluate the charge storage capacity and ion transmission rate of porous electrodes of SCs. Biochar materials were prepared using CaCO3 and KOH as the template and activator, respectively, and the effects of different template and activator contents on the specific surface area, pore volume, morphology and electrochemical properties of the prepared biochar materials were investigated. The as-prepared biochar, designated as 800-PAC-750-1:1, possessed a hierarchically porous framework with a relatively high specific surface area of 2384 m2 g−1 and a specific capacitance of 240.3 F g−1 at a current density of 0.5 A g−1. The 800-PAC-750-1:1 electrode also exhibited excellent cycling stability with 87.5% capacitance retention after 10 000 cycles.
高性能电极材料的成本效益和直接方法的发展代表了超级电容器(SCs)应用和发展的关键进步。层次化多孔碳材料由于其高比表面积和优异的电子导电性,被认为是一种很有前途的超导材料。本文报道了以柚子皮为原料,通过炭化、模板法和活化处理合成结构可控的多孔炭。本文采用阻抗模型评价了多孔电极的电荷存储容量和离子传输速率。以CaCO3和KOH分别作为模板和活化剂制备生物炭材料,考察了不同模板和活化剂含量对制备的生物炭材料的比表面积、孔体积、形貌和电化学性能的影响。所制备的生物炭,命名为800-PAC-750-1:1,具有分层多孔框架,具有较高的比表面积2384 m2 g−1,在0.5 a g−1电流密度下的比电容为240.3 F g−1。800-PAC-750-1:1电极在10,000次循环后也表现出良好的循环稳定性,电容保持率为87.5%。