Enhancing Efficiency and Stability of Perovskite Solar Cells Through Electron‐Rich Covalent Organic Frameworks Radicals

S Shuai Yang J Jiaxin Ma (Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) H Hao Luo J Jinbei Wei (Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) W Wei Huang T Tianhong Huang (Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) C Chang Cui J Jiadi Chen (Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China) W Weifeng Zhang J Jizheng Wang G Gui Yu

Abstract

ABSTRACT Effective regulation of perovskite crystallization is crucial for achieving high‐performance perovskite solar cells (PSCs). However, perovskite films typically exhibit low crystallinity and are plagued by abundant bulk and grain boundary defects. Simultaneously controlling crystallization kinetics, defect passivation, and energy level alignment remains a significant challenge. In this study, we designed and synthesized an electron‐rich covalent organic framework (COF FAT ) and further introduced N‐cationic radicals (COF Rad ) within its framework and pores via a one‐step post‐treatment. The introduction of these radicals significantly reduced the COFs bandgap, enhanced charge transfer, and minimized open‐circuit voltage (V OC ) loss. The ordered COFs structure, featuring multiple coordination sites (Ph–N and N• + ), modulated the crystallization process and effectively passivated bulk and grain boundary defects, thereby improving the crystallinity of α ‐perovskite. As a result, PSCs incorporating COF Rad achieved a remarkable power conversion efficiency (PCE) of 26.33% (certified 25.98%). These devices retained 88% of their initial PCE after 1000 h of thermal aging at 85°C, demonstrating outstanding durability. Moreover, COFs‐based PSCs exhibited excellent stability under continuous illumination and humid conditions. This work delivers the highest efficiency reported for COFs‐based PSCs to date and offers a new strategy for developing high‐performance and stable optoelectronic devices.

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 (11)

S

Shuai Yang

J

Jiaxin Ma

Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

H

Hao Luo

J

Jinbei Wei

Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

W

Wei Huang

T

Tianhong Huang

Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

C

Chang Cui

J

Jiadi Chen

Beijing National Laboratory for Molecular Sciences CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing P. R. China

W

Weifeng Zhang

J

Jizheng Wang

G

Gui Yu