Sun Yonghui, Shu Yuqing, Zheng Li, Song Yufei, Huang Baotong, Xu Xiufang, Chen Haohua, Chang Junbiao, Xin Pengyang
State Key Laboratory of Antiviral Drugs, Pingyuan Laboratory, NMPA Key Laboratory for Research and Evaluation of Innovative Drug, School of Chemistry and Chemical Engineering, Henan Normal University 46 Jianshe Road Xinxiang 453007 China
College of Chemistry State Key Laboratory of Elemento-Organic Chemistry Nankai University Tianjin 300071 China.
Chem Sci. 2025 Aug 25. doi: 10.1039/d5sc05008a.
The construction of polymer-based photoactivated room-temperature phosphorescence systems remains a prominent research focus, yet the development of ultrafast activated systems under ambient conditions continues to pose a challenge. In this study, cyclized phenothiazine derivatives bearing diverse substituents are synthesized and incorporated into an amorphous polyvinyl alcohol (PVA) matrix, resulting in significantly enhanced dynamic photoactivation characteristics compared with those of their pristine monomeric counterparts. Under ambient conditions and 2 s irradiation, the lifetime and quantum yield of C[4]PTZ-OH@PVA increase by factors of 1.96 (from 11.8 to 23.1 ms) and 3.43 (from 8.62% to 29.53%), respectively, relative to those of PTZ-OH@PVA. Theoretical calculations and experimental data reveal the mechanism of ultrafast photoactivation: (1) the rigid cyclic architecture suppresses non-radiative decay and enhances the probability of intersystem crossing pathways; (2) the hydroxyl-substituted phenothiazine derivatives form an extensive hydrogen-bonding network with PVA, providing isolation from oxygen and moisture invasion while suppressing molecular vibrations. This synergistic effect enables rapid depletion of residual O under irradiation, thereby accelerating the photoactivation of C[4]PTZ-OH@PVA. Notably, various patterns are printed on the films within 2 s, and then quickly erased after annealing. This study proposes a novel cyclization-enhanced strategy for photoactivated room-temperature phosphorescence, offering valuable guidance for the development of high-performance light-responsive materials.
基于聚合物的光活化室温磷光体系的构建仍然是一个突出的研究重点,然而在环境条件下开发超快活化体系仍然是一个挑战。在本研究中,合成了带有不同取代基的环化吩噻嗪衍生物,并将其掺入无定形聚乙烯醇(PVA)基质中,与原始单体对应物相比,其动态光活化特性显著增强。在环境条件和2秒的照射下,C[4]PTZ-OH@PVA的寿命和量子产率相对于PTZ-OH@PVA分别提高了1.96倍(从11.8毫秒提高到23.1毫秒)和3.43倍(从8.62%提高到29.53%)。理论计算和实验数据揭示了超快光活化的机制:(1)刚性环状结构抑制了非辐射衰变,提高了系间窜越途径的概率;(2)羟基取代的吩噻嗪衍生物与PVA形成广泛的氢键网络,提供了与氧气和水分侵入的隔离,同时抑制了分子振动。这种协同效应使得在照射下能够快速消耗残余的O,从而加速C[4]PTZ-OH@PVA的光活化。值得注意的是,各种图案在2秒内被印在薄膜上,然后在退火后迅速被擦除。本研究提出了一种用于光活化室温磷光的新型环化增强策略,为高性能光响应材料的开发提供了有价值的指导。