Jia Yawei, Li Pengfei, Liu Kanglei, Li Chenglong, Liu Meiyan, Di Jiaqi, Wang Nan, Yin Xiaodong, Zhang Niu, Chen Pangkuan
Beijing Key Laboratory of Photoelectronic/Electrophotonic Conversion Materials, Key Laboratory of Cluster Science of the Ministry of Education, Key Laboratory of Medical Molecule Science and Pharmaceutics Engineering of the Ministry of Industry and Information Technology, School of Chemistry and Chemical Engineering, Beijing Institute of Technology of China Beijing 102488 China
Analysis & Testing Centre, Beijing Institute of Technology of China Beijing 102488 China
Chem Sci. 2022 Sep 26;13(39):11672-11679. doi: 10.1039/d2sc03581b. eCollection 2022 Oct 12.
π-Conjugated macrocycles involving electron-deficient boron species have received increasing attention due to their intriguing tunable optoelectronic properties. However, most of the reported B(sp)-doped macrocycles are difficult to modify due to the synthetic challenge, which limits their further applications. Motivated by the research of non-strained hexameric bora- and aza-cyclophanes, we describe a new class of analogues MC-BN5 and MC-ABN5 that contain charge-reversed triarylborane (ArB) units and oligomeric triarylamines (ArN) in the cyclics. As predicted by DFT computations, the unique orientation of the donor-acceptor systems leads to an increased dipole moment compared with highly symmetric macrocycles (M1, M2 and M3), which was experimentally represented by a significant solvatochromic effect with large Stokes shifts up to 12 318 cm. Such a ring-structured design also allows the easy peripheral modification of aza-boracyclophanes with tetraphenylethenyl (TPE) groups, giving rise to a change in the luminescence mechanism from aggregation-caused quenching (ACQ) in MC-BN5 to aggregation-induced emission (AIE) in MC-ABN5. The open-shell characteristics have been chemically enabled and were characterized by UV-Vis-NIR spectroscopy and electron paramagnetic resonance (EPR) for MC-BN5. The present study not only showed new electronic properties, but also could expand the research of B/N doped macrocycles into the future scope of supramolecular chemistry, as demonstrated in the accessible functionalization of ring systems.
由于其有趣的可调谐光电特性,涉及缺电子硼物种的π共轭大环化合物受到了越来越多的关注。然而,由于合成挑战,大多数已报道的B(sp)掺杂大环化合物难以修饰,这限制了它们的进一步应用。受非张力六聚硼杂环和氮杂环蕃研究的启发,我们描述了一类新的类似物MC-BN5和MC-ABN5,它们在环中包含电荷反转的三芳基硼烷(ArB)单元和低聚三芳基胺(ArN)。正如DFT计算所预测的,与高度对称的大环化合物(M1、M2和M3)相比,供体-受体系统的独特取向导致偶极矩增加,这在实验中表现为具有高达12318 cm的大斯托克斯位移的显著溶剂化显色效应。这种环结构设计还允许用四苯乙烯基(TPE)基团轻松地对氮杂硼环蕃进行外围修饰,从而使发光机制从MC-BN5中的聚集导致猝灭(ACQ)转变为MC-ABN5中的聚集诱导发光(AIE)。MC-BN5的开壳特性已通过化学方法实现,并通过紫外-可见-近红外光谱和电子顺磁共振(EPR)进行了表征。本研究不仅展示了新的电子特性,还可以将B/N掺杂大环化合物的研究扩展到超分子化学的未来范围,如环系统的可及功能化所示。