Zhuhua Wang, Zhongduo Luojiang, Rong Wang, Kaiyue Song, Xiaoxia Sun, Yu Hu
Chirality is crucial for the function of biological molecules and various chemical reactions, yet recognizing and detecting it remains a significant challenge. R-BITOP, a Lysine enantiomeric-selective fluorescence probe with AIE Properties was efficiently synthesized via nucleophilic cyclization. Upon reaching a water content of 90%, scanning electron microscopy revealed that the R-BITOP molecules had undergone aggregation and self-assembly into supramolecular J-aggregates, resulting in the formation of irregularly shaped microspheres. Additionally, a novel orange-red fluorescence emission peak was detected at 603 nm. Single crystal diffraction analysis indicated that the self-assembly of R-BITOP into supramolecular structures was driven by both intramolecular and intermolecular hydrogen bonding, as well as significantly strengthened by weak π-π interactions between the electron-deficient B ring of one R-BITOP molecule and the electron-rich A ring of another. The fluorescence emission of the R-BITOP probe exhibited a rapid enhancement corresponding to the increasing concentration of L-Lys via a ICT mechanism with low detection limit to 12 nM and the binding constant was calculated to be 2.25 × 105 M-1. The fluorescence lifetime of R-BITOP was only 0.35 ns, which was significantly prolonged to 4.26 ns after interacting with L-Lys. Concurrently, its morphological characteristics transitioned from an irregular spherical configuration to a reticular microporous architecture.