Regulating Both In‐Plane and Out‐Of‐Plane Supramolecular Interactions in COFs for Simultaneously Enhanced Crystallinity and Stability

P Pengcheng Wu K Ke Wang (Tianjin Medical University Cancer Institute and Hospital Tianjin China) L Liancheng Hu (Key Laboratory of Radiation Physics and Technology of Ministry of Education Institute of Nuclear Science and Technology College of Chemistry Sichuan University Chengdu Sichuan China) D Dingguo Xu (Key Laboratory of Radiation Physics and Technology of Ministry of Education Institute of Nuclear Science and Technology College of Chemistry Sichuan University Chengdu Sichuan China) X Xiaowei Li (College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education) Y Yimin Cai (College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education) N Ning Liu W Wen Feng (College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education) L Lihua Yuan (College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education)

Abstract

ABSTRACT The demand for high‐performance applications of covalent organic frameworks (COFs) under harsh conditions drives the need for reaching both outstanding crystallinity and high stability, while these two properties necessitate contradictory structural features and are thus challenging to achieve simultaneously. We herein report a multidimensional supramolecular approach to manipulating both crystallinity and stability of COFs by harnessing in‐plane and out‐of‐plane interactions with greatly enhanced performance in applications. The introduction of triple three‐center hydrogen bonds into the linkage enhances in‐plane local rigidity and planarity, while embedding electron‐withdrawing heteroatoms into the linker mitigates out‐of‐plane electrostatic repulsion. The integration of the two structural features into a single COF results in profoundly enhanced interlayer π‐π stacking interactions, ultimately providing considerably higher crystallinity and stability than those of control COFs, as well as significantly improved performance under harsh conditions, as exemplified by palladium separation from simulated high‐level liquid waste. This work establishes a hybrid supramolecular approach to improving both crystallinity and stability of COFs toward prominent applications.

Article Details

Volume / Issue Vol. 65, Issue 11
Published March 09, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (9)

P

Pengcheng Wu

K

Ke Wang

Tianjin Medical University Cancer Institute and Hospital Tianjin China

L

Liancheng Hu

Key Laboratory of Radiation Physics and Technology of Ministry of Education Institute of Nuclear Science and Technology College of Chemistry Sichuan University Chengdu Sichuan China

D

Dingguo Xu

Key Laboratory of Radiation Physics and Technology of Ministry of Education Institute of Nuclear Science and Technology College of Chemistry Sichuan University Chengdu Sichuan China

X

Xiaowei Li

College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education

Y

Yimin Cai

College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education

N

Ning Liu

W

Wen Feng

College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education

L

Lihua Yuan

College of Chemistry, Institute of Nuclear Science and Technology, Key Laboratory of Radiation Physics and Technology of Ministry of Education