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Published on: June 10, 2021
Aggregated-state arylborane-pillar[5]arenes: a new three-in-one method for the modulation of circularly polarized
Yuting Xue1, Yu Tian1, Ruiquan Li1
1Key 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 pangkuan@bit.edu.cn.
Abstract:
Although chiroptical macrocyclic systems are highly studied in supramolecular chemistry and materials science, it remains a substantial challenge to simultaneously achieve high emission efficiency and a strong circularly polarized luminescence (CPL) dissymmetry factor. Herein, we report a molecular design strategy that integrates aggregation-induced emission (AIE), heteroatom incorporation, and symmetry engineering to modulate the chiroptical performance of planar chiral pillar[5]arene luminogens. In these modular chiral systems of arylborane-pillar[5]arenes (1-4) functionalized with classical tetraphenylethylene (TPE) and BN-isostere tetraarylaminoborane (BN-TPE), the heteroatom-regulated excited-state electronic structures and BN dipole-induced symmetry perturbation are synergistically coupled with AIE-active emissions, enabling the simultaneous enhancement of fluorescence efficiency and CPL performance. Compared with the carbon-based parent 1, both 2 and 4 exhibit highly enhanced chiroptical properties with an aggregated-state emission quantum yields (Φ F) of up to 96% and B CPL values of up to 43.4 M-1 cm-1. Experimental and theoretical studies reveal that triarylborane incorporation promotes excited-state charge separation and AIE-enhanced fluorescence, whereas BN substitution introduces symmetry perturbation and electronic polarization that facilitate efficient chiroptical emissions. The three-in-one strategy established in this work may open new opportunities to close the persistent gap between emission efficiency and chiroptical activity, and highlights the potential of heteroatom-engineered chiral macrocycles for advanced functional materials and in optoelectronic applications.
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