Li Mengna, Yuan Daqiang, Wu Benlai, Hong Maochun
College of Chemistry, Zhengzhou University, Zhengzhou 450001, P. R. China.
State Key Laboratory of Structural Chemistry, Fujian Institute of the Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, P. R. China.
ACS Appl Mater Interfaces. 2023 May 10;15(18):22241-22250. doi: 10.1021/acsami.3c01735. Epub 2023 Apr 26.
Homochiral metal-organic frameworks (HMOFs) have been widely investigated in the application of enantiomeric separation. Nonetheless, it remains a significant challenge to explore the effect of multiple weak interactions between HMOF adsorbents and chiral adsorbates on enantiomeric separation performance still. In this work, robust chiral amine-alcohol-functionalized UiO-68-typed Zr-HMOFs - with the same hydrogen-bonding sites but slightly different π-binding sites were prepared for the enantioseparation of amino acid derivatives (Fmoc-AAs) with large π-binding groups. As a consequence of multiple host-guest interactions, these Zr-HMOFs exhibit speedy adsorption and high adsorption capacity for Fmoc-/-AAs and dissimilar enantioselectivity for the adsorption of their enantiomers. Materials and exhibit excellent enantioselective separation performance for Fmoc-valine with a single terminal π-binding group, while material displays excellent enantioselective separation performance for Fmoc-phenylalanine and Fmoc-tryptophan with π-binding groups at both ends. As evidently demonstrated by our experimental and density functional theory (DFT) computational results, when the number of π-binding groups preset in the confined chiral space of adsorbents matches the number of π-binding groups of chiral adsorbates, the synergism of π-π or σ-π interactions will increase enantioselectivity; otherwise, the competition interactions from redundant identical binding sites will weaken enantioselectivity. Our case not only provides a tremendously typical system for investigating the collaborative discrimination of multiple weak interactions and exploring the impact of relatively excessive binding sites of HMOF adsorbents or chiral adsorbates on the enantioselective separation performance but also provides guidance for targeted functional modifications of high-performance chiral porous materials.
同手性金属有机框架(HMOFs)在对映体分离应用中已得到广泛研究。尽管如此,探索HMOF吸附剂与手性吸附质之间多种弱相互作用对映体分离性能的影响仍然是一项重大挑战。在这项工作中,制备了具有相同氢键位点但π-结合位点略有不同的稳健的手性胺醇功能化UiO-68型Zr-HMOFs,用于对具有大π-结合基团的氨基酸衍生物(Fmoc-AAs)进行对映体分离。由于多种主客体相互作用,这些Zr-HMOFs对Fmoc-/-AAs表现出快速吸附和高吸附容量,并且对其对映体的吸附具有不同的对映选择性。材料 对具有单个末端π-结合基团的Fmoc-缬氨酸表现出优异的对映选择性分离性能,而材料 对两端都具有π-结合基团的Fmoc-苯丙氨酸和Fmoc-色氨酸表现出优异的对映选择性分离性能。我们的实验和密度泛函理论(DFT)计算结果清楚地表明,当吸附剂受限手性空间中预设的π-结合基团数量与手性吸附质的π-结合基团数量匹配时,π-π或σ-π相互作用的协同作用将提高对映选择性;否则,来自多余相同结合位点的竞争相互作用将削弱对映选择性。我们的案例不仅为研究多种弱相互作用的协同识别以及探索HMOF吸附剂或手性吸附质相对过量结合位点对映选择性分离性能的影响提供了一个非常典型的体系,还为高性能手性多孔材料的靶向功能修饰提供了指导。