Ma Shuo, Zhao Biao, Deng Jianping
State Key Laboratory of Chemical Resource Engineering, College of materials Science and Engineering Beijing University of Chemical Technology, Beijing 100029, China.
ACS Cent Sci. 2023 Jun 23;9(7):1409-1418. doi: 10.1021/acscentsci.3c00122. eCollection 2023 Jul 26.
In-depth studies of chirality and circularly polarized luminescence (CPL) have become indispensable in the process of learning human nature. Small molecules with CPL activity are one of the research hotspots. However, the CPL properties of such materials are generally not satisfying. Here, we synthesized a series of chiral small molecular fluorophores that cannot demonstrate CPL emission themselves. By introducing an optically inactive helical polymer, chirality transfer and chirality amplification efficiently occur, thereby generating intense CPL emission. Through combining different chiralized fluorophores, multicolor CPL-active films with emission wavelength centered at 463, 525, and 556 nm were fabricated, with the maximum luminescence dissymmetry factor () being up to -0.028. Then, benefiting from the strong CPL emission and appropriate energy donor-acceptor system, we further established a circularly polarized fluorescence-energy transfer (CPF-ET) strategy in which the CPL-active films work as a donor emitting circularly polarized fluorescence to excite an achiral fluorophore (Nile red) as the acceptor, producing red CPL with of up to -0.011 at around 605 nm.
在手性和圆偏振发光(CPL)方面的深入研究在了解人类本性的过程中已变得不可或缺。具有CPL活性的小分子是研究热点之一。然而,这类材料的CPL性质通常并不令人满意。在此,我们合成了一系列本身无法表现出CPL发射的手性小分子荧光团。通过引入一种非手性螺旋聚合物,有效地发生了手性转移和手性放大,从而产生强烈的CPL发射。通过组合不同的手性荧光团,制备了发射波长分别为463、525和556 nm的多色CPL活性薄膜,最大发光不对称因子()高达-0.028。然后,受益于强烈的CPL发射和合适的能量供体-受体体系,我们进一步建立了一种圆偏振荧光-能量转移(CPF-ET)策略,其中CPL活性薄膜作为供体发射圆偏振荧光以激发作为受体的非手性荧光团(尼罗红),在605 nm左右产生最大为-0.011的红色CPL。