Wentao Xu, Ni Hui, Linna Xu, Jiajun Gong, Dongping Cheng, Huawei Lv, Xiaoyan Hu, Chu Chu, Xingnuo Li, Shengqiang Tong
Chiral covalent organic frameworks (CCOFs) have attracted considerable attention as promising materials for enantioseparation. In this work, a series of β-cyclodextrin-bridged chiral COFs with precisely tunable chiral-site densities were synthesized via a bottom-up strategy using the 1,3,5-tris(4-aminophenyl)benzene (TPB) linkers and newly designed BPTA-CD monomers. The BPTA-CD unit was synthesized by grafting mercapto-β-cyclodextrin (SH-β-CD) onto 2,5-bis(prop‑2-yn-1-yloxy) terephthalaldehyde (BPTA) via a thiol-alkyne "click" reaction. By adjusting the BPTA-CD/BPTA ratio, the density of chiral recognition sites within the COF framework could be finely regulated. The resulting CCOFs were covalently grafted onto silica microspheres to yield COF-grafted silica stationary phases for HPLC enantioseparation. Under optimized conditions, these stationary phases successfully separated 14 out of 19 dansylated amino acids (DNS-AAs) and exhibited high thermal stability and good reproducibility. Increasing the chiral-site density led to markedly enhanced enantioresolution, demonstrating the pivotal role of tunable chiral environments in recognition performance. This work provides an effective strategy for constructing chiral-site-controllable COFs for high-performance liquid chromatographic enantioseparation.