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用于引导电化学发光的网状棘轮

Reticular Ratchets for Directing Electrochemiluminescence.

作者信息

Luo Rengan, Luo Xiao, Xu Haocheng, Wan Sushu, Lv Haifeng, Zou Beier, Wang Yufei, Liu Tianrui, Wu Chuang, Chen Qizhou, Yu Siqi, Dong Pengfei, Tian Yuxi, Xi Kai, Yuan Shuai, Wu Xiaojun, Ju Huangxian, Lei Jianping

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, State Key Laboratory of Coordination Chemistry, Key Laboratory of Mesoscopic Chemistry of MOE, School of Chemistry and Chemical Engineering, Nanjing University, Nanjing 210023, China.

Key Laboratory of Precision and Intelligent Chemistry, School of Chemistry and Materials Sciences, and iChem, Hefei National Laboratory, University of Science and Technology of China, Hefei 230026, China.

出版信息

J Am Chem Soc. 2024 Jun 5. doi: 10.1021/jacs.4c03981.

Abstract

Electrochemiluminescence (ECL) involves charge transfer between electrochemical redox intermediates to produce an excited state for light emission. Ensuring precise control of charge transfer is essential for decoding ECL fundamentals, yet guidelines on how to achieve this for conventional emitters remain unexplored. Molecular ratchets offer a potential solution, as they enable the directional transfer of energy or chemicals while impeding the reverse movement. Herein, we designed 10 pairs of imine-based covalent organic frameworks as reticular ratchets to delicately manipulate the intrareticular charge transfer for directing ECL transduction from electric and chemical energies. Aligning the donor and acceptor (D-A) directions with the imine dipole effectively facilitates charge migration, whereas reversing the D-A direction impedes it. Notably, the ratchet effect of charge transfer directionality intensified with increasing D-A contrast, resulting in a remarkable 680-fold improvement in the ECL efficiency. Furthermore, dipole-controlled exciton binding energy, electron/hole decay kinetics, and femtosecond transient absorption spectra identified the electron transfer tendency from the N-end toward the C-end of reticular ratchets during ECL transduction. An exponential correlation between the ECL efficiency and the dipole difference was discovered. Our work provides a general approach to manipulate charge transfer and design next-generation electrochemical devices.

摘要

电化学发光(ECL)涉及电化学氧化还原中间体之间的电荷转移,以产生用于发光的激发态。确保对电荷转移进行精确控制对于解读ECL基本原理至关重要,但对于传统发光体如何实现这一点的指导方针仍未得到探索。分子棘轮提供了一种潜在的解决方案,因为它们能够实现能量或化学物质的定向转移,同时阻止反向运动。在此,我们设计了10对基于亚胺的共价有机框架作为网状棘轮,以精细地操纵网状内电荷转移,从而引导来自电能和化学能的ECL转导。使供体和受体(D-A)方向与亚胺偶极对齐有效地促进了电荷迁移,而反转D-A方向则会阻碍电荷迁移。值得注意的是,电荷转移方向性的棘轮效应随着D-A对比度的增加而增强,导致ECL效率显著提高了680倍。此外,偶极控制的激子结合能、电子/空穴衰减动力学以及飞秒瞬态吸收光谱确定了在ECL转导过程中从网状棘轮的N端向C端的电子转移趋势。发现了ECL效率与偶极差之间的指数相关性。我们的工作提供了一种操纵电荷转移和设计下一代电化学装置的通用方法。

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