Enantioselective Self‐Assembly of a Homochiral Tetrahedral Cage Comprising Only Achiral Precursors

Author:

Chen Yixin1,Cao Ze1,Feng Tinglong12,Zhang Xiaobo1,Li Zhaoyong12,Dong Xue3,Huang Shaoying4,Liu Yingchun1,Cao Xiaoyu3,Sue Andrew C.‐H.3,Peng Chuanhui5,Lin Xufeng1,Wang Linjun12,Li Hao14ORCID

Affiliation:

1. Department of Chemistry Zhejiang University Hangzhou 310058 China

2. Key Laboratory of Excited-State Materials of Zhejiang Province Hangzhou 310058 China

3. College of Chemistry and Chemical Engineering Xiamen University Xiamen 361005 China

4. ZJU-Hangzhou Global Scientific and Technological Innovation Center Hangzhou 310027 China

5. The First Affiliated Hospital Zhejiang University School of Medicine Hangzhou 310003 China

Abstract

AbstractHow Nature synthesizes enantiomerically pure substances from achiral or racemic resources remains a mystery. In this study, we aimed to emulate this natural phenomenon by constructing chiral tetrahedral cages through self‐assembly, achieved by condensing two achiral compounds–a trisamine and a trisaldehyde. The occurrence of intercomponent CH⋅⋅⋅π interactions among the phenyl building blocks within the cage frameworks results in twisted conformations, imparting planar chirality to the tetrahedrons. In instances where the trisaldehyde precursor features electron‐withdrawing ester side chains, we observed that the intermolecular CH⋅⋅⋅π forces are strong enough to prevent racemization. To attain enantioselective self‐assembly, a chiral amine was introduced during the imine formation process. The addition of three equivalents of chiral amino mediator to one equivalent of the achiral trisaldehyde precursor formed a trisimino intermediate. This chiral compound was subsequently combined with the achiral trisamino precursor, leading to an imine exchange reaction that releasing the chiral amino mediator and formation of the tetrahedral cage with an enantiomeric excess (ee) of up to 75 %, exclusively composed of achiral building blocks. This experimental observation aligns with theoretical calculations based on the free energies of related cage structures. Moreover, since the chiral amine was not consumed during the imine exchange cycle, it enabled the enantioselective self‐assembly of the tetrahedral cage for multiple cycles when new batches of the achiral trisaldehyde and trisamino precursors were successively added.

Publisher

Wiley

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