分子内力
共价键
亚胺
氧化还原
共轭体系
化学物理
离域电子
化学
再分配(选举)
材料科学
亲核细胞
共价有机骨架
光化学
聚合物
氢
亲核加成
纳米技术
质子
电极
聚合
密度泛函理论
氢键
化学稳定性
化学工程
离子
电子转移
网络共价键合
动态共价化学
亲核取代
计算化学
质子输运
组合化学
有机自由基电池
储能
作者
Zhe Zhao,Weiwei Huang,Xinlei Xu,Yifan Tong,Linxin Lv,Jinglun Yang,Q Z Zhang
摘要
ABSTRACT Proton tautomerism, a ubiquitous phenomenon involving the dynamic interconversion of structural isomers through proton migration, has seldom been utilized in electrode design. One known example of this untapped potential is the imine‐enamine (─NH─/═N─) equilibrium in conjugated heterocycles. Herein, this reversible process is harnessed to regulate charge transport in covalent organic frameworks (COFs). Two π‐conjugated COFs, HATBQ and HATPT, were constructed via nucleophilic aromatic substitution (SNAr), which integrate dense C═N/C═O redox‐active sites into chemically stable skeletons. The conjugated imine bonds, formed via nucleophilic aromatic substitution, enable the formation of an extensive network of intramolecular hydrogen bonds. This network enhances the crystallinity of the COFs without compromising the reversible proton tautomerism. These combined characteristics endow the COFs, particularly HATPT, with exceptional long‐term cycling stability and rate performance. As a result, HATPT delivers outstanding durability in Sodium‐ ion batteries (SIBs), retaining 225 mAh g −1 after 5000 cycles at 10 A g −1 , and exhibits strong compatibility in full‐cell configurations with Na 3 V 2 (PO 4 ) 3 (NVP). This tautomerism‐driven electronic modulation significantly lowers the activation energy for redox reactions, thereby facilitating efficient Na + storage kinetics.
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