School of Chemistry and Chemical Engineering, Beijing Institute of Technology, Beijing 100081, China.
School of Materials Science and Engineering, Beijing Institute of Technology, Beijing 100081, China.
J Colloid Interface Sci. 2019 Jun 1;545:25-34. doi: 10.1016/j.jcis.2019.03.010. Epub 2019 Mar 6.
In this study, we propose a novel template and chemical activation method to fabricate the nitrogen and fluorine co-doped hierarchically porous carbon with polytetrafluoroethylene-polyaniline as the precursor and KOH as the activation reagent. The key to this strategy is the utilization of polytetrafluoroethylene as an additive during the process, which not only serves as a fluorine source but also acts as a template to increase the specific surface area. Moreover, polytetrafluoroethylene disappears after carbonization without requiring a complicated template-removal process. The as-prepared materials possess a favorable hierarchical porous structure that is conductive to the transportation and diffusion of ions. They also acquire effective nitrogen and fluorine co-doping to further improve the electrochemical performance. The optimized carbon material displays a high specific capacitance (291 F g at 0.5 A g) and maintains 180 F g even at 100 A g in 6 M KOH. Moreover, it presents an excellent cycling performance with 95.5% capacitance retention after 10,000 cycles. The fabricated symmetric supercapacitor delivers high energy densities of 12.91 Wh kg. These results represent a new performance record for nitrogen and fluorine co-doped porous carbon-based supercapacitors, rendering the polytetrafluoroethylene particles to be a promising template for producing porous carbon materials.
在这项研究中,我们提出了一种新颖的模板和化学活化方法,以聚四氟乙烯-聚苯胺为前驱体,KOH 为活化剂,制备氮氟共掺杂的分级多孔碳。该策略的关键在于在制备过程中使用聚四氟乙烯作为添加剂,它不仅作为氟源,而且还作为增加比表面积的模板。此外,聚四氟乙烯在碳化后消失,无需复杂的模板去除过程。所制备的材料具有良好的分级多孔结构,有利于离子的传输和扩散。它们还获得了有效的氮氟共掺杂,进一步提高了电化学性能。优化后的碳材料表现出高比电容(在 0.5 A g 时为 291 F g),即使在 6 M KOH 中以 100 A g 的电流密度下也能保持 180 F g。此外,它具有出色的循环性能,在 10000 次循环后电容保持率为 95.5%。所制备的对称超级电容器具有 12.91 Wh kg 的高能量密度。这些结果代表了氮氟共掺杂多孔碳基超级电容器的新性能记录,表明聚四氟乙烯颗粒是制备多孔碳材料的有前途的模板。