Wang Kang, Liu Junkai, Liu Peiying, Wang Dong, Han Ting, Tang Ben Zhong
Center for AIE Research, Shenzhen Key Laboratory of Polymer Science and Technology, Guangdong Research Center for Interfacial Engineering of Functional Materials, College of Materials Science and Engineering, Shenzhen University, Shenzhen 518060, China.
College of Physics and Optoelectronic Engineering, Shenzhen University, Shenzhen 518060, China.
J Am Chem Soc. 2023 Feb 10. doi: 10.1021/jacs.2c12654.
Fluorescent polyelectrolytes have attracted enormous attention as functional polymer materials. In contrast with the widely studied conjugated polyelectrolytes with ionic groups in side chains, fluorescent main-chain charged polyelectrolytes (MCCPs) have rarely been explored due to the large synthetic difficulty. Herein, we develop a facile and atom-economical -heterocyclic carbene-directed cascade C-H activation/annulation polymerization strategy that can transform readily available imidazolium substrates and internal diynes into multifunctional fluorescent MCCPs with complex structures and high molecular weights (absolute up to 135 600) in nearly quantitative yields. The presence of multisubstituted polycyclic -heteroaromatic cations in polymer backbones endow the obtained MCCPs with excellent solution processability, high thermal stability, and dual-state efficient fluorescence in both solution and aggregate states. Benefiting from the strong electron-withdrawing capability of the cationic heterocycles in main chains, multicolored aggregate-state fluorescence can be readily achieved by modifying the substituents around the cationic ring-fused core. Taking advantage of the good photosensitivity of the fluorescent MCCP thin films, multiscale and high-resolution fluorescent photopatterns with different colors can be facilely prepared with potential applications in optical display devices and anticounterfeiting systems. Moreover, the strong electrostatic interactions of these cationic MCCPs with anionic polyelectrolytes enable them to form multicolored fluorescent interfacial polyelectrolyte complexation microfibers with directly visualized internal structures. Such flexible microfibers can be further made into diversified forms of fiber-based macroscopic patterns or painting.
荧光聚电解质作为功能高分子材料已引起了广泛关注。与侧链带有离子基团且已被广泛研究的共轭聚电解质不同,荧光主链带电聚电解质(MCCPs)由于合成难度大,很少被研究。在此,我们开发了一种简便且原子经济的 - 杂环卡宾导向的级联C - H活化/环化聚合策略,该策略可以将易得的咪唑鎓底物和内二炔转化为具有复杂结构和高分子量(绝对分子量高达135600)的多功能荧光MCCPs,产率接近定量。聚合物主链中多取代的多环 - 杂芳族阳离子的存在赋予所得MCCPs优异的溶液加工性、高热稳定性以及在溶液和聚集态下的双态高效荧光。受益于主链中阳离子杂环的强吸电子能力,通过修饰阳离子环稠合核心周围的取代基,可以很容易地实现多色聚集态荧光。利用荧光MCCP薄膜良好的光敏性,可以轻松制备具有不同颜色的多尺度和高分辨率荧光光图案,在光学显示器件和防伪系统中具有潜在应用。此外,这些阳离子MCCPs与阴离子聚电解质的强静电相互作用使它们能够形成具有直接可视化内部结构的多色荧光界面聚电解质复合微纤维。这种柔性微纤维可以进一步制成多种形式的基于纤维的宏观图案或画作。