Structural Differentiation of Homologous Anisodimensional Frameworks Driven by Site‐Selective Polymerization

P Pan He (College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education) D Dongyu Li (Department of Molecular Genetics, University of Texas Southwestern Medical Center) P Pengyu Yan (College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education) J Jinchun Zhou (College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education) K Kaifu Yu (College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education) K Kecheng Cao Y Yang Li L Lijian Ma (College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education)

Abstract

Abstract Theoretically, distinguished from the dimensional isomers in reticular chemistry, structures with different dimensions can also be formed by site‐selective polymerization using identical building blocks bearing a high density of reactive sites. Unfortunately, the spatial confinement imposes significant challenges for molecular building blocks to achieve dimensional differentiation via their intrinsic site‐selective reactivity. In this work, we first report the dimensional differentiation of covalent organic frameworks (COFs) driven by site‐selective polymerization of identical molecular building blocks with a high density of reactive sites. This unique phenomenon was demonstrated for the first time to originate from the role of aniline in enhancing the reversibility of the reaction system and modulating the conformational flexibility of the monomers. We systematically elucidated the mechanism underlying this dimensional differentiation and successfully demonstrated the generality of the synthetic strategy. Moreover, the residual benzaldehyde in the frameworks generated via the site‐selective polymerization of the building blocks can serve as exciton acceptors, significantly enhancing the photocatalytic performance. This work not only offers a novel strategy for regulating the dimensionality of COFs but also provides a valuable reference for precisely controlling the conformational flexibility of building blocks to enable topological transformations.

Article Details

Volume / Issue Vol. 64, Issue 35
Published August 25, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

P

Pan He

College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education

D

Dongyu Li

Department of Molecular Genetics, University of Texas Southwestern Medical Center

P

Pengyu Yan

College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education

J

Jinchun Zhou

College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education

K

Kaifu Yu

College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education

K

Kecheng Cao

Y

Yang Li

L

Lijian Ma

College of Chemistry, Key Laboratory of Green Chemistry and Technology, Ministry of Education