对映选择合成
部分
堆积
单独一对
共价键
化学
动力学分辨率
分子间力
非共价相互作用
密度泛函理论
分子识别
组合化学
计算化学
催化作用
立体化学
分子
氢键
有机化学
作者
Ming Yu Jin,Qianqian Zhen,Dengmengfei Xiao,Guanyu Tao,Xiangyou Xing,Peiyuan Yu,Chen Xu
标识
DOI:10.1038/s41467-022-31026-8
摘要
Molecular recognition and self-assembly are often mediated by intermolecular forces involving aromatic π-systems. Despite the ubiquity of such interactions in biological systems and in the design of functional materials, the elusive nature of aromatic π interaction results in that they have been seldom used as a design element for promoting challenging chemical reactions. Described here is a well-engineered catalytic system into which non-covalent π interactions are directly incorporated. Enabled by a lone pair-π interaction and a π-π stacking interaction operating collectively, efficient chiral recognition is successfully achieved in the long-pursued dihydroxylation-based kinetic resolution. Density functional theory calculations shed light on the crucial role played by the lone pair-π interaction between the carbonyl oxygen of the cinchona alkaloid ligand and the electron-deficient phthalazine π moiety of the substrate in the stereoselectivity-determining transition states. This discovery serves as a proof-of-principle example showing how the weak non-covalent π interactions, if ingeniously designed, could be a powerful guide in attaining highly enantioselective catalysis.
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