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碳纳米管模板辅助合成具有高比表面积的共轭微孔聚苯并三氮唑用于高效超级电容器储能。

Carbon Nanotube Template-Assisted Synthesis of Conjugated Microporous Polytriphenylamine with High Porosity for Efficient Supercapacitive Energy Storage.

机构信息

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Shanghai, 201620, P. R. China.

College of Materials Science and Engineering, Donghua University, Shanghai, 201620, P. R. China.

出版信息

Macromol Rapid Commun. 2024 Jan;45(1):e2300238. doi: 10.1002/marc.202300238. Epub 2023 Jun 27.

Abstract

Engineering of conjugated microporous polymers (CMPs) with high porosity, redox activity, and electronic conductivity is of significant importance for their practical applications in electrochemical energy storage. Aminated-multiwall carbon nanotubes (NH -MWNT) are utilized to modulate the porosity and electronic conductivity of polytriphenylamine (PTPA), which is synthesized via Buchwald-Hartwig coupling reaction of tri(4-bromophenyl)amine and phenylenediamine as constitutional units in a one-step in situ polymerization process. Compared to PTPA, the specific surface area of core-shell PTPA@MWNTs has been greatly improved from 32 to 484 m  g . The PTPA@MWNTs exhibites an improved specific capacitance, with the highest value 410 F g in 0.5 M H SO at a current of 10 A g achieve for PTPA@MWNT-4 due to the hierarchical meso-micro pores, high redox-activity and electronic conductivity. Symmetric supercapacitor assemble by PTPA@MWNT-4 has a capacitance of 216 F g of total electrode materials and retains 71% of initial capacitance after 6000 cycles. This study gives new insights into the role of CNT templates in the adjustment of molecular structure, porosity, and electronic property of CMPs for the high-performance electrochemical energy storage.

摘要

工程共轭微孔聚合物 (CMPs) 具有高孔隙率、氧化还原活性和电子导电性对于它们在电化学储能中的实际应用具有重要意义。氨化多壁碳纳米管 (NH-MWNT) 用于调节聚三苯胺 (PTPA) 的孔隙率和电子导电性,PTPA 是通过三 (4-溴苯基) 胺和苯二胺作为结构单元的 Buchwald-Hartwig 偶联反应在一步原位聚合过程中合成的。与 PTPA 相比,核壳 PTPA@MWNTs 的比表面积从 32 大幅提高到 484 m 2 g 。PTPA@MWNTs 表现出改善的比电容,在 10 A g 的电流密度下,在 0.5 M H 2 SO 4 中,最高值为 410 F g ,这归因于分层介孔-微孔、高氧化还原活性和电子导电性。由 PTPA@MWNT-4 组装的对称超级电容器的总电极材料电容为 216 F g ,在 6000 次循环后保留初始电容的 71%。这项研究为 CNT 模板在调整 CMPs 的分子结构、孔隙率和电子性能以实现高性能电化学储能方面的作用提供了新的见解。

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