Wang Xujie, 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.
Adv Mater. 2023 Dec;35(49):e2304405. doi: 10.1002/adma.202304405. Epub 2023 Nov 5.
Chiral nematic liquid crystals (N*-LCs) can tremendously amplify circularly polarized luminescence (CPL) signals. Doped emissive N*-LCs have been substantially explored. However, their CPL performances still need to be improved, mainly due to the unsatisfying helical twisting power (HTP) of commonly used chiral fluorescent dopants. Chiral fluorescent helical polymers (CFHPs) have outstanding optical activity and CPL performance. The present contribution reports the first success in constructing emissive N*-LCs by doping CFHP into nematic liquid crystals (5CB, N-LCs). The helical assembly structures of N*-LCs effectively amplify the CPL signals of the CFHP. Owing to the high HTP of CFHP, the selective reflection band of N*-LC can be adjusted to fully cover its emission band. A nearly pure CPL with a dissymmetry factor (g ) up to -1.87 is realized at 9 wt% doping concentration. Taking advantage of the selective reflection mechanism, multi-color CPL-active N*-LCs with high g are fabricated via further adding achiral fluorophores. Also noticeably, circularly polarized room-temperature phosphorescence with g up to -1.57 is achieved. Anti-counterfeiting application is demonstrated by exploiting multi-mode optical characteristics of the created N*-LCs. The established strategy for constructing emissive N*-LCs provides a platform for future exploring of CPL-active N*-LCs.
手性向列相液晶(N* - LCs)能够极大地放大圆偏振发光(CPL)信号。掺杂发光的N* - LCs已得到大量研究。然而,它们的CPL性能仍有待提高,主要是由于常用手性荧光掺杂剂的螺旋扭曲能力(HTP)不尽人意。手性荧光螺旋聚合物(CFHPs)具有出色的光学活性和CPL性能。本研究首次成功地通过将CFHP掺杂到向列相液晶(5CB,N - LCs)中构建了发光的N* - LCs。N* - LCs的螺旋组装结构有效地放大了CFHP的CPL信号。由于CFHP的高HTP,N* - LCs的选择性反射带可被调整以完全覆盖其发射带。在9 wt%的掺杂浓度下实现了不对称因子(g)高达 -1.87的近乎纯的CPL。利用选择性反射机制,通过进一步添加非手性荧光团制备了具有高g值的多色CPL活性N* - LCs。同样值得注意的是,实现了g值高达 -1.57的圆偏振室温磷光。通过利用所制备的N* - LCs的多模光学特性展示了防伪应用。所建立的构建发光N* - LCs的策略为未来探索CPL活性N* - LCs提供了一个平台。