共价键
共价有机骨架
电极
合理设计
电化学
化学
水溶液
氧化还原
动力学
化学稳定性
离域电子
纳米技术
化学工程
联动装置(软件)
非共价相互作用
材料科学
组合化学
分子间力
网络共价键合
金属有机骨架
电子转移
聚合物
连接器
离解(化学)
密度泛函理论
作者
Hang Shang,Zhonghui Sun,Xiaomeng Yan,Guannan Chen,Gongyuan Zhao,Huiling Liu,Jinsong Peng,Shaowei Guan,Hongyan Yao,Chaoqi Chen
标识
DOI:10.1021/acssuschemeng.5c13828
摘要
Covalent organic frameworks (COFs) with tailored functional groups represented promising electrode materials for aqueous zinc-ion batteries (AZIBs). However, while prevailing research on linker and vertex chemistries─especially enhancing redox-active sites and electron conduction─the potential of linkage chemistry in regulating Zn 2+ /H + transport kinetics remained fundamentally underexplored. Herein, a covalent organic framework (HPP-COF) featuring hexaazatriphenylene as redox-active vertex center and electron-positive pyridinamine linkage was fabricated as the electrode material for AZIBs. The high-density redox-active sites, coupled with effective electron delocalization and intermolecular π–π interactions, collectively ensure substantial and stable H + /Zn 2+ storage. Furthermore, the electron-positive nature of the pyridinamine linkage modified the local electronic environment to accelerate redox kinetics at the electron-negative hexaazatriphenylene center. Consequently, HPP-COF achieved a high reversible capacity (309 mAh g –1 at 0.025 A g –1 ), outstanding rate performance (57 mAh g –1 at 5 A g –1 ), and exceptional cycling stability with 80.1% capacity retention after 6000 cycles at 2 A g –1 . Mechanistic studies further revealed a multistep co-storage mechanism of Zn 2+ and H + with the C═N groups, involving the initial coordination of Zn 2+ followed by the binding of H + . This work provides new insights into the rational linkage design of COF electrodes for enhancing the electrochemical performance.
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