Beijing National Laboratory for Molecular Sciences, CAS Key Laboratory of Molecular Recognition and Function, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
University of Chinese Academy of Sciences, Beijing, 100190, P. R. China.
Chemistry. 2019 Oct 17;25(58):13275-13279. doi: 10.1002/chem.201903272. Epub 2019 Sep 24.
Manipulation of the emerging anion-π interactions in a highly cooperative manner through sophisticated host design represents a very challenging task. In this work, unprecedented tetrahedral anion-π receptors have been successfully constructed for complementary accommodation of tetrahedral and relevant anions. The synthesis was achieved by a macrocycle-directed approach by using large macrocycle precursors bearing four reactive sites, which enabled a kinetic-favored pathway and afforded the otherwise inaccessible tetrahedral cages in considerable yields. Crystal structure suggested that the tetrahedral cages have an enclosed three-dimensional cavity surrounded by four electron-deficient triazine faces in a tetrahedral array. The complementary accommodation of a series of tetrahedral and relevant anions including BF , ClO , H PO , HSO , SO and PF was revealed by ESI-MS and DFT calculations. Crystal structures of ClO and PF complexes showed that the anion was nicely encapsulated within the tetrahedral cavity with up to quadruple cooperative anion-π interactions by an excellent shape and size match. The strong anion-π binding was further confirmed by negative ion photoelectron spectroscopy measurements.
以精巧的主体设计来实现对新兴阴离子-π 相互作用的高协同调控是一项极具挑战性的任务。在这项工作中,我们成功构建了前所未有的四面体阴离子-π 受体,用于对四面体和相关阴离子进行互补容纳。该合成采用大环导向方法,使用带有四个反应位点的大环前体,这使得反应沿着动力学有利的途径进行,并以相当高的产率得到了原本难以获得的四面体笼。晶体结构表明,四面体笼具有一个被四面体形排列的四个缺电子三嗪面所包围的封闭三维空腔。通过 ESI-MS 和 DFT 计算揭示了一系列四面体和相关阴离子(包括 BF 、ClO 、H PO 、HSO 、SO 和 PF )的互补容纳。ClO 和 PF 配合物的晶体结构表明,阴离子被很好地包裹在四面体空腔内,通过极好的形状和大小匹配,形成四重协同阴离子-π 相互作用。阴离子-π 键的强结合进一步通过负离子光电子能谱测量得到证实。