电化学发光
共价键
材料科学
纳米技术
离子
电子通信
信号(编程语言)
机制(生物学)
数码产品
电子结构
电荷(物理)
铀
电极
工作(物理)
光电子学
无线电频率
纳米材料
电子材料
分子电子学
探测理论
计算机科学
自组装
电子系统
电化学
作者
Yi‐Di Xun‐Jia,Qiao‐Qiao Jiang,Cheng‐Rong Zhang,Zhi‐Yong Chen,X Wang,Ru‐Ping Liang,Shaogang Liu,Jian‐Ding Qiu
出处
期刊:Small
[Wiley]
日期:2026-05-05
卷期号:: e73650-e73650
摘要
ABSTRACT Efficient donor–acceptor (D–A) electronic coupling is critical for optimizing charge transport in covalent organic frameworks (COFs). However, linkage‐induced spatial segregation in conventional binary COFs disrupts carrier continuity, thereby severely limiting electrochemiluminescence (ECL), a process that demands rapid, synchronized, and directional charge dynamics. To overcome this constraint, we develop a rationally designed multicomponent assembly strategy based on orthogonal Betti and Scholl reactions, enabling stepwise enhancement of through‐bond electronic connectivity. Specifically, the strategic incorporation of a phenolic third component bridges spatially isolated donor and acceptor units, establishing uninterrupted intramolecular charge‐transport pathways and yielding a 24.4‐fold increase in ECL intensity relative to the binary analogue. Furthermore, the synergistic action of Betti and Scholl reactions drives in situ cyclization to form rigid, planar tetrahydroquinoline linkages, thereby improving backbone coplanarity, extending π‐conjugation across the D–A interface, and amplifying ECL emission by 3.7‐fold compared with the ternary precursor. Crucially, selective disruption of these extended π‐pathways via coordination with UO 2 2+ ions induces quantifiable, dose‐dependent ECL quenching, providing direct experimental evidence of a structure‐function relationship between multicomponent‐engineered electronic connectivity and signal transduction. This work establishes a mechanism for how multicomponent assembly controls topological electronic connectivity in COFs, providing a general design principle to tailor charge transport in functional materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI