Chen Yali, Huang Zengfang, Liu Xiaobo, Mao Liucheng, Yuan Jinying, Zhang Xiaoyong, Tao Lei, Wei Yen
School of Materials & Food Engineering, Zhongshan Institute, University of Electronic Science & Technology of China Zhongshan 528402 P. R. China
School of Materials and Energy, University of Electronic Science & Technology of China Chengdu 610054 P. R. China.
RSC Adv. 2019 Oct 11;9(56):32601-32607. doi: 10.1039/c9ra06452d. eCollection 2019 Oct 10.
In recent years, amphiphilic AIE-active fluorescent organic materials with aggregation-induced emission (AIE) properties have been extensively investigated due to their excellent properties. This study describes the synthesis of a novel AIE-active dye of tetraphenylethylene diphenylaldehyde (TPDA). As compared with the reported fluorescent dye TPB, the fluorescence intensity of TPDA is significantly enhanced with the distinct red shift of emission wavelength. Subsequently, the corresponding novel polymers PEG-TPD were obtained through the one-pot combination of Hantzsch reaction and RAFT polymerization. The structure of PEG-TPD1 by the two-step process was similar with that of PEG-TPD2 by the one-pot method at the same feeding ratio of TPDA and PEGMA. The molecular weights ( ) of the polymers PEG-TPD1 and PEG-TPD2 were respectively 52 000 and 28 000 with narrow polydispersity index (PDI), and their molar fractions of TPDA were respectively about 9.5% and 14.3%, indicating that the degree of Hantzsch reaction in the one-pot process was more complete. Subsequently, the effect of feed ratio of TPDA and PEGMA on polymer structure was further studied. It can be seen that the of the polymers gradually increases as the proportion of TPDA increases. In aqueous solution, these amphiphilic PEG-TPD polymers tended to self-assemble into corresponding fluorescent polymer nanoparticles (FPNs). The diameter of PEG-TPD2 FPNs ranged from 200 to 300 nm, and their fluorescence emission spectra have maximum emission peak at 509 nm. The PEG-TPD FPNs have significant advantages such as good fluorescence intensity, high water dispersibility, good biocompatibility and easy absorption by cells, which can be attractively used in the field of bioimaging.
近年来,具有聚集诱导发光(AIE)特性的两亲性AIE活性荧光有机材料因其优异的性能而受到广泛研究。本研究描述了一种新型的四苯乙烯二苯甲醛(TPDA)AIE活性染料的合成。与报道的荧光染料TPB相比,TPDA的荧光强度显著增强,发射波长有明显的红移。随后,通过汉茨希反应和可逆加成-断裂链转移(RAFT)聚合的一锅法得到了相应的新型聚合物PEG-TPD。在TPDA和聚乙二醇甲基丙烯酸酯(PEGMA)相同的进料比下,两步法制备的PEG-TPD1的结构与一锅法制备的PEG-TPD2的结构相似。聚合物PEG-TPD1和PEG-TPD2的分子量分别为52000和28000,多分散指数(PDI)较窄,它们的TPDA摩尔分数分别约为9.5%和14.3%,表明一锅法中汉茨希反应的程度更完全。随后,进一步研究了TPDA与PEGMA进料比对聚合物结构的影响。可以看出,随着TPDA比例的增加,聚合物的 逐渐增大。在水溶液中,这些两亲性PEG-TPD聚合物倾向于自组装成相应的荧光聚合物纳米颗粒(FPNs)。PEG-TPD2 FPNs的直径范围为200至300nm,其荧光发射光谱在509nm处有最大发射峰。PEG-TPD FPNs具有荧光强度好、水分散性高、生物相容性好和细胞易吸收等显著优点,可在生物成像领域得到有吸引力的应用。