State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, China.
Chem Soc Rev. 2021 May 7;50(9):5706-5745. doi: 10.1039/d0cs01236j. Epub 2021 Mar 22.
Obtaining homochiral compounds is of high importance to human health and environmental sustainability. Currently, enantioseparation is one of the most effective approaches to obtain homochiral compounds. Thanks to their controlled synthesis and high efficiency, homochiral metal-organic frameworks (HMOFs) are one of the most widely studied porous materials to enable enantioseparation. In this review, we discuss the chiral pocket model in depth as the key to unlock enantioselective separation mechanisms in HMOFs. In particular, we classify our discussion of these chiral pockets (also regarded as "molecular traps") into: (a) achiral/chiral linker based helical channels as a result of packing modality; and (b) chiral pores inherited from chiral ligands. Driven by a number of mechanisms of enantioseparation, conceptual advances have been recently made in the design of HMOFs for achieving high enantioseparation performances. Herein, these are systematically categorised and discussed. Further we elucidate various applications of HMOFs as regards enantioseparation, systematically classifying them into their use for purification and related analytical utility according to the reported examples. Last but not the least, we discuss the challenges and perspectives concerning the rational design of HMOFs and their corresponding enantioseparations.
获得手性化合物对人类健康和环境可持续性至关重要。目前,对映体分离是获得手性化合物的最有效方法之一。由于其可控合成和高效率,手性金属有机骨架(HMOFs)是研究最多的用于对映体分离的多孔材料之一。在本综述中,我们深入讨论了手性口袋模型作为揭示 HMOFs 中对映选择性分离机制的关键。特别是,我们将这些手性口袋(也称为“分子陷阱”)分类为:(a) 由于堆积方式而产生的基于非手性/手性连接基的螺旋通道;和 (b) 来自手性配体的手性孔。受多种对映体分离机制的驱动,HMOFs 的设计在实现高对映体分离性能方面取得了新的进展。本文系统地对这些进展进行了分类和讨论。此外,我们还根据报道的实例,将 HMOFs 在对映体分离方面的各种应用系统地分类为纯化和相关分析用途。最后但同样重要的是,我们讨论了关于 HMOFs 及其相应对映体分离的合理设计的挑战和展望。