Liu Ke, Zhang Jing, Shi Qiyuan, Ding Liping, Liu Taihong, Fang Yu
Key Laboratory of Applied Surface and Colloid Chemistry of Ministry of Education, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Shaanxi, Xi'an 710062, China.
J Am Chem Soc. 2023 Apr 5;145(13):7408-7415. doi: 10.1021/jacs.2c13843. Epub 2023 Mar 17.
Excited-state intramolecular proton transfer (ESIPT) has been widely employed for the design of a variety of functionality-led molecular systems. However, precise manipulation of the excited-state reaction is challenging. Herein, we report a new tactic for tuning ESIPT via incorporating an excited-state intramolecular charge transfer (ESICT) process. Specifically, three -carborane derivatives, , , and , were designed, where the 2-(2'-hydroxyphenyl)-benzothiazole is a typical ESIPT unit functioning as an electron acceptor, and the electron-donating units are naphthyl-(Na), phenanthrenyl-(Pa), and pyrenyl-(Py), respectively. The architectures of the molecules are featured with a face-to-face alignment of the two units. Spectroscopy and theoretical calculation studies revealed that the electron-donating capacity of the donors and solvent polarity continuously modulate the ESIPT/ESICT energetics and dynamics, resulting in distinct emissions. Moreover, the molecules depicted not only highly porous structures but also very different fluorescent colors in the solid state, enabling highly selective film-based fluorescence sensing of mustard gas simulant, 2-chloroethyl ethyl sulfide, with a detection limit of 50 ppb and a response time of 5 s. This work thus provides a reliable strategy for the creation of high-performance sensing fluorophores via ESIPT manipulation.
激发态分子内质子转移(ESIPT)已被广泛应用于各种功能导向分子体系的设计中。然而,对激发态反应进行精确调控具有挑战性。在此,我们报道了一种通过引入激发态分子内电荷转移(ESICT)过程来调节ESIPT的新策略。具体而言,设计了三种碳硼烷衍生物, 、 和 ,其中2-(2'-羟基苯基)-苯并噻唑是典型的作为电子受体的ESIPT单元,供电子单元分别为萘基(Na)、菲基(Pa)和芘基(Py)。分子结构的特点是两个单元面对面排列。光谱和理论计算研究表明,供体的供电子能力和溶剂极性会持续调节ESIPT/ESICT的能量和动力学,从而产生不同的发射。此外,这些分子不仅呈现出高度多孔的结构,而且在固态下具有非常不同的荧光颜色,能够对芥子气模拟物2-氯乙基乙基硫醚进行基于薄膜的高选择性荧光传感,检测限为50 ppb,响应时间为5秒。因此,这项工作为通过ESIPT调控创建高性能传感荧光团提供了一种可靠的策略。