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用于双离子电容器的纳米球形碳骨架的氢键导向胶束组装共轭微孔聚合物

Hydrogen-bonded micelle assembly directed conjugated microporous polymers for nanospherical carbon frameworks towards dual-ion capacitors.

作者信息

Qin Yang, Jha Shreeti, Hu Chengmin, Song Ziyang, Miao Ling, Chen Yumin, Liu Pingxuan, Lv Yaokang, Gan Lihua, Liu Mingxian

机构信息

Shanghai Key Lab of Chemical Assessment and Sustainability, School of Chemical Science and Engineering, Tongji University, Shanghai 200092, PR. China.

College of Chemical Engineering, Zhejiang University of Technology, Hangzhou 310014, PR China.

出版信息

J Colloid Interface Sci. 2024 Dec;675:1091-1099. doi: 10.1016/j.jcis.2024.07.052. Epub 2024 Jul 6.

Abstract

Well-orchestrated carbon nanostructure with superb stable framework and high surface accessibility is crucial for zinc-ion hybrid capacitors (ZIHCs). Herein, a hydrogen-bonded micelle self-assembly strategy is proposed for morphology-controllable synthesis of conjugated microporous polymers (CMPs) derived carbon to boost zinc ion storage capability. In the strategy, F127 micellar assembly through intermolecular hydrogen bonds serves as structure-directed agents, directing CMPs' oligomers grow into nanospherical assembly. The nanospherical carbon frameworks derived from CMPs (CNS-2) have shown maximized surface accessibility due to their plentiful tunable porosity and hierarchical porous structure with abundant mesoporous interconnected channels, and superb stability originating from CMPs' robust framework, thus the CNS-2-based ZIHCs exhibit ultrahigh energy density of 163 Wh kg and ultralong lifespan with 93 % capacity retention after 200, 000 cycles at 20 A g. Charged ion storage efficiency also lies in dual-ion alternate uptake of Zn and CFSO as well as chemical redox of Zn with carbonyl/pyridine motifs forming O-Zn-N bonds. Maximized surface accessibility and dual-ion storage mechanism ensure excellent electrochemical performance. Thus, the hydrogen-bond-guide micelle self-assembly strategy has provided a facile way to design nanoarchitectures of CMPs derived carbon for advanced cathodes of ZIHCs.

摘要

具有出色稳定框架和高表面可及性的精心设计的碳纳米结构对于锌离子混合电容器(ZIHC)至关重要。在此,提出了一种氢键胶束自组装策略,用于形态可控地合成共轭微孔聚合物(CMP)衍生的碳,以提高锌离子存储能力。在该策略中,通过分子间氢键进行的F127胶束组装充当结构导向剂,引导CMP的低聚物生长成纳米球形组装体。源自CMP的纳米球形碳框架(CNS-2)由于其丰富的可调孔隙率和具有大量中孔互连通道的分级多孔结构而显示出最大化的表面可及性,并且由于CMP的坚固框架而具有出色的稳定性,因此基于CNS-2的ZIHC在20 A g下经过200,000次循环后表现出163 Wh kg的超高能量密度和93%的容量保持率的超长寿命。带电离子存储效率还在于Zn和CFSO的双离子交替摄取以及Zn与形成O-Zn-N键的羰基/吡啶基序的化学氧化还原。最大化的表面可及性和双离子存储机制确保了优异的电化学性能。因此,氢键引导的胶束自组装策略为设计用于ZIHC先进阴极的CMP衍生碳的纳米结构提供了一种简便方法。

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