Xiao Zhichang, Han Junwei, He Haiyong, Zhang Xinghao, Xiao Jing, Han Daliang, Kong Debin, Wang Bin, Yang Quan-Hong, Zhi Linjie
Department of Chemistry, College of Science, Hebei Agricultural University, Baoding 071001, P. R. China.
Nanoyang Group, State Key Laboratory of Chemical Engineering, School of Chemical Engineering and Technology, Collaborative Innovation Center of Chemical Science and Engineering (Tianjin), Tianjin University, Tianjin 300350, P. R. China.
Nanoscale. 2021 Nov 25;13(45):19210-19217. doi: 10.1039/d1nr05618b.
Lithium-ion capacitors (LICs) have attracted much attention considering their efficient combination of high energy density and high-power density. However, to meet the increasing requirements of energy storage devices and the flexible portable electronic equipment, it is still challenging to develop flexible LIC anodes with high specific capacity and excellent rate capability. Herein, we propose a delicate bottom-up strategy to integrate unique Schiff-base-type polymers into desirable one-dimensional (1D) polymeric structures. A secondary-polymerization-induced template-oriented synthesis approach realizes the 1D integration of Schiff-base porous organic polymers with appealing characteristics of a high nitrogen-doping level and developed pore channels, and a further thermalization yields flexible nitrogen-enriched carbon nanofibers with high specific capacity and fast ion transport. Remarkably, when used as the flexible anode in LICs, the NPCNF//AC LIC demonstrates a high energy density of 154 W h kg at 500 W kg and a high power density of 12.5 kW kg at 104 W h kg. This work may provide a new scenario for synthesizing 1D Schiff-base-type polymer derived nitrogen-enriched carbonaceous materials towards promising free-standing anodes in LICs.
锂离子电容器(LICs)因其高效结合了高能量密度和高功率密度而备受关注。然而,为了满足储能设备和柔性便携式电子设备不断增长的需求,开发具有高比容量和优异倍率性能的柔性LIC阳极仍然具有挑战性。在此,我们提出了一种精细的自下而上策略,将独特的席夫碱型聚合物整合到理想的一维(1D)聚合物结构中。二次聚合诱导的模板导向合成方法实现了具有高氮掺杂水平和发达孔道的席夫碱多孔有机聚合物的一维整合,进一步热解得到具有高比容量和快速离子传输的柔性富氮碳纳米纤维。值得注意的是,当用作LICs中的柔性阳极时,NPCNF//AC LIC在500 W kg时表现出154 W h kg的高能量密度,在104 W h kg时表现出12.5 kW kg的高功率密度。这项工作可能为合成一维席夫碱型聚合物衍生的富氮碳质材料以用于LICs中具有前景的自支撑阳极提供新的思路。