Jiang Gaoshang, Ma Yinhua, Ding Junxia, Liu Jianyong, Liu Runze, Zhou Panwang
State Key Laboratory of Molecular Reaction Dynamics, Dalian Institute of Chemical Physics, Chinese Academy of Sciences, Dalian, 116023, P. R. China.
University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Chemistry. 2023 Jul 6;29(38):e202300625. doi: 10.1002/chem.202300625. Epub 2023 May 19.
N-protonation for numerous fluorophores is widely known as an efficient switch for the fluorescence turn-on/off in acidic conditions, which has been applied in various scenarios that involve pH monitoring. Yet the universal mechanism for fluorescence regulation through N-protonation is still elusive. Herein, the excited state deactivation processes are systematically investigated for a series of nitrogen-containing fluorescent probes through theoretical approaches. Two types of mechanisms for the complex fluorescent phenomena by N-protonation are concluded: one is through the regulation for the transition to a ππ* twisted intramolecular charge transfer (TICT) state; the other one applies for the case when nonradiative decay pathway is predominant by a dark nπ* state, which is also accompanied by an evident structural twisting and can be regarded as another kind of TICT state. More generally, the formation of the TICT state is closely related to the conjugated π-electrons on the single bond that links the acceptor and donor part of fluorophores, which provides a simple strategy for evaluating the occurrence of the TICT process. The current contributions can bring novel insights for the rational design of functional fluorophores that involve TICT process in the excited states.
众多荧光团的N-质子化作为酸性条件下荧光开启/关闭的有效开关已广为人知,它已应用于各种涉及pH监测的场景中。然而,通过N-质子化进行荧光调节的普遍机制仍然难以捉摸。在此,通过理论方法系统地研究了一系列含氮荧光探针的激发态失活过程。总结了N-质子化导致复杂荧光现象的两种机制:一种是通过调节向ππ扭曲分子内电荷转移(TICT)态的跃迁;另一种适用于非辐射衰变途径以暗nπ态为主导的情况,这也伴随着明显的结构扭曲,可被视为另一种TICT态。更普遍地说,TICT态的形成与连接荧光团受体和供体部分的单键上的共轭π电子密切相关,这为评估TICT过程的发生提供了一种简单策略。当前的研究成果可为合理设计在激发态涉及TICT过程的功能性荧光团带来新的见解。