用于电化学电荷存储的共价有机框架多尺度结构工程

SusMat Pub Date : 2023-12-28 DOI:10.1002/sus2.180
Xiaofang Zhang, Fangling Li, Shuangqiao Yang, Baiqi Song, Richu Luo, Rui Xiong, Weilin Xu
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引用次数: 0

摘要

共价有机框架(COFs)是通过动态共价键连接有机结构单元而构建的,是新出现的新兴结晶多孔共聚物,具有可编程拓扑结构、可预先设计的周期性骨架、定义明确的微孔/介孔、大比表面积和可定制的电活性功能等特点。这些优点使 COFs 成为先进电化学储能的理想候选材料。特别是目前,人们已经从多尺度方面对 COFs 进行了结构工程设计,以便在结构耐久性、导电性、氧化还原活性和电荷存储方面实现最佳的整体电化学性能。在这篇综述中,我们从介绍 COFs 的基本化学性质和电荷存储原理入手,对 COFs 的多尺度结构工程与最终电化学性能之间的相关性进行了基础而深入的研究。从连接、氧化还原位点、多边形骨架、晶体纳米结构和复合微结构等方面仔细论述了 COFs 结构工程的重大成果,并进一步介绍了它们对 COFs 电化学行为的影响。最后,及时提出了有关 COF 基电极材料的前沿观点和深入见解,以合理筛选其电化学行为,应对未来挑战,实现电化学储能应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi‐scale structure engineering of covalent organic framework for electrochemical charge storage
Covalent organic frameworks (COFs), which are constructed by linking organic building blocks via dynamic covalent bonds, are newly emerged and burgeoning crystalline porous copolymers with features including programmable topological architecture, pre‐designable periodic skeleton, well‐defined micro‐/meso‐pore, large specific surface area, and customizable electroactive functionality. Those benefits make COFs as promising candidates for advanced electrochemical energy storage. Especially, for now, structure engineering of COFs from multi‐scale aspects has been conducted to enable optimal overall electrochemical performance in terms of structure durability, electrical conductivity, redox activity, and charge storage. In this review, we give a fundamental and insightful study on the correlations between multi‐scale structure engineering and eventual electrochemical properties of COFs, started with introducing their basic chemistries and charge storage principles. The careful discussion on the significant achievements in structure engineering of COFs from linkages, redox sites, polygon skeleton, crystal nanostructures, and composite microstructures, and further their effects on the electrochemical behavior of COFs are presented. Finally, the timely cutting‐edge perspectives and in‐depth insights into COF‐based electrode materials to rationally screen their electrochemical behaviors for addressing future challenges and implementing electrochemical energy storage applications are proposed.
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