Huang Wei, Jiang Nan, Li Gege, Jiang Yalong, Zhang Qing, Tsui Chi-Pong, Tang Chak-Yin, Yang Yingkui
School of Chemistry and Materials Science, South-Central Minzu University, Wuhan, 430074, China.
State Key Laboratory of New Textile Materials and Advanced Processing, Wuhan Textile University, Wuhan, 430200, China.
Macromol Rapid Commun. 2025 Aug;46(16):e2500133. doi: 10.1002/marc.202500133. Epub 2025 May 12.
Covalent organic frameworks (COFs) are frequently explored as attractive electrode materials for next-generation sustainable lithium-ion batteries. Unfortunately, such metal-free electrode materials suffer from low practical capacities and poor rate capabilities, due to low intrinsic conductivity, limited redox-active sites, and insufficient electrochemical utilization. Herein, integrating conductive carbon nanotubes (CNTs) with bipolar-type COFs enriched by multi-electron redox-active sites is rationally crafted by in situ Schiff base condensation to fabricate robust core-shell hierarchical heterostructures (CNT@COF). Remarkably, the as-fabricated CNT@COF cathode delivers a large reversible capacity (253.1 mAh g at 0.2 A g), high rate capability (161.6 mA h g at 5 A g), and excellent cycling stability (retaining 76.6% of initial capacity at 5 A g over 1000 cycles), because of the fast ion/electron transport and high utilization of active groups. Accordingly, both spectroscopy techniques and theoretical calculations are employed to reveal the redox reaction mechanisms of COF moieties and the reversible conversion of bipolar-type nitrogen-containing active centers (imine, triazine, and triphenylamine) against with PF /Li is rationalized clearly. This work crafts an unusual strategy to address common issues for organic polymer electrodes by macromolecular engineering to unlock the barrier of high-capacity and high-rate storage in powerful batteries.
共价有机框架(COFs)常被视作下一代可持续锂离子电池极具吸引力的电极材料。遗憾的是,这类无金属电极材料存在实际容量低和倍率性能差的问题,原因在于其本征电导率低、氧化还原活性位点有限以及电化学利用率不足。在此,通过原位席夫碱缩合将导电碳纳米管(CNTs)与富含多电子氧化还原活性位点的双极型COFs相结合,合理构建出坚固的核壳分级异质结构(CNT@COF)。值得注意的是,所制备的CNT@COF阴极具有大的可逆容量(0.2 A g时为253.1 mAh g)、高倍率性能(5 A g时为161.6 mA h g)以及出色的循环稳定性(5 A g下1000次循环后保留初始容量的76.6%),这归因于快速的离子/电子传输以及活性基团的高利用率。因此,采用光谱技术和理论计算来揭示COF部分的氧化还原反应机理,并清晰地阐明双极型含氮活性中心(亚胺、三嗪和三苯胺)相对于PF /Li的可逆转化。这项工作通过大分子工程设计出一种独特策略来解决有机聚合物电极的常见问题,以突破高性能电池中高容量和高倍率存储的障碍。