Natural Sunlight‐Driven Synthesis of Conjugated Microporous Polymers via Electron Donor‐Acceptor Complexes for Highly Efficient Catalytic Upcycling of Real‐World Plastic Waste

Y Yifan Dong (Frontier Institute of Science and Technology) W Wenyu Li (Frontier Institute of Science and Technology) A Ailin Pan (Frontier Institute of Science and Technology) Y Yimin Pan (Frontier Institute of Science and Technology) S Shufang Tang (Frontier Institute of Science and Technology) Y Yintao Li S Shaofeng Zhang (Frontier Institute of Science and Technology) W Wenjie Shi (Institute for New Energy Materials & Low Carbon Technologies) W Wenbin Lin H Haifeng Zheng (Frontier Institute of Science and Technology)

Abstract

ABSTRACT The sustainable upcycling of plastic waste under ambient conditions remains a major challenge due to the lack of efficient, robust, and environmentally benign photocatalysts. Here we report a green and metal‐free strategy for the synthesis of conjugated microporous polymers (CMPs) that directly addresses this challenge. The polymers are prepared using natural sunlight to drive polymerization through in situ–formed electron donor–acceptor (EDA) complexes, eliminating the need for harsh conditions or precious metals. The resulting CMPs, TMPB‐AQ and TTPM‐AQ, function as efficient heterogeneous photocatalysts for the ambient‐temperature upcycling of ten types of real‐world polystyrene‐based plastics into value‐added benzoic acid. The process is readily scalable to gram quantities in both batch and continuous‐flow reactors and maintains high catalytic performance over eleven reuse cycles, highlighting its practical durability. Mechanistic insights from combined experimental and computational studies reveal that the high activity originates from the intrinsic porosity and extended conjugation of the CMPs, which promote spontaneous adsorption of polystyrene chains, efficient mass transport, and effective charge separation at the polymer–plastic interface. Overall, this work demonstrates a sustainable pathway that integrates green materials synthesis with the productive valorization of plastic waste, advancing circular‐economy approaches to polymer recycling.

Article Details

Volume / Issue Vol. 65, Issue 31
Published July 27, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (10)

Y

Yifan Dong

Frontier Institute of Science and Technology

W

Wenyu Li

Frontier Institute of Science and Technology

A

Ailin Pan

Frontier Institute of Science and Technology

Y

Yimin Pan

Frontier Institute of Science and Technology

S

Shufang Tang

Frontier Institute of Science and Technology

Y

Yintao Li

S

Shaofeng Zhang

Frontier Institute of Science and Technology

W

Wenjie Shi

Institute for New Energy Materials & Low Carbon Technologies

W

Wenbin Lin

H

Haifeng Zheng

Frontier Institute of Science and Technology