Conductive Polymer Bridges Mediate High‐Performance Flexible Perovskite–Organic Tandem Solar Cells

Y Yuelong Zhou (Department of Plant Sciences, School of Agriculture and Biology, Shanghai Jiao Tong University) Q Qian Ye B Bo Tian (Hubei Provincial Clinical Research Center for Alzheimer’s Disease, Brain Science and Advanced Technology Institute, Tianyou Hospital, School of Medicine, Wuhan University of Science and Technology) S Siqi Liu S Shuo Yao J Jiaxiang Lv (School of Chemical Engineering/Key Laboratory of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education Jiangxi Normal University Nanchang China) C Cong Wang (Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066) R Runying Dai (School of Chemical Engineering/Key Laboratory of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education Jiangxi Normal University Nanchang China) D Dong Chen Z Zengqi Huang X Xiaotian Hu Y Yiwang Chen (College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.)

Abstract

ABSTRACT In flexible perovskite–organic tandem solar cells (TSCs), the numerous grain boundaries (GBs) in Br‐rich perovskite films are critical in determining their efficiency and mechanical durability. Exacerbated carrier recombination, photon‐induced lattice expansion, and phase segregation originating from GBs substantially reduce the photovoltaic performance and reliability. In this work, we developed a conductive polymer composite by incorporating an ionic liquid into polyurethane (PU), which passivates Pb‐ and FA‐related defects and suppresses halide segregation while mitigating residual stress. Critically, it establishes efficient lateral conductive polymer bridges (CPB) across GBs. The CPB significantly increased carrier diffusion length and suppressed nonradiative recombination. As a result, the rigid wide‐bandgap (WBG) perovskite solar cells (PSCs) achieved a champion efficiency of 20.85% along with outstanding operational stability ( T 90 > 1000 h). In flexible configurations, CPB‐mediated devices attained a high efficiency of 19.03% and exhibited excellent mechanical robustness, retaining 92% of their initial PCE after 10 000 bending cycles. Furthermore, the perovskite–organic TSCs reached notable power conversion efficiencies of 25.92% for rigid versions and 24.02% for flexible ones. Remarkably, the rigid tandem cells maintained 87% of their initial PCE after 1000 h of continuous light exposure, while the flexible counterparts retained 81% of their original PCE after 10 000 bending cycles.

Article Details

Volume / Issue Vol. 38, Issue 47
Published August 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

Y

Yuelong Zhou

Department of Plant Sciences, School of Agriculture and Biology, Shanghai Jiao Tong University

Q

Qian Ye

B

Bo Tian

Hubei Provincial Clinical Research Center for Alzheimer’s Disease, Brain Science and Advanced Technology Institute, Tianyou Hospital, School of Medicine, Wuhan University of Science and Technology

S

Siqi Liu

S

Shuo Yao

J

Jiaxiang Lv

School of Chemical Engineering/Key Laboratory of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education Jiangxi Normal University Nanchang China

C

Cong Wang

Key Laboratory of Preclinical Study for New Drugs of Gansu Province, School of Basic Medical Sciences & Research Unit of Peptide Science, Chinese Academy of Medical Sciences, 2019RU066

R

Runying Dai

School of Chemical Engineering/Key Laboratory of Fluorine and Silicon for Energy Materials and Chemistry of Ministry of Education Jiangxi Normal University Nanchang China

D

Dong Chen

Z

Zengqi Huang

X

Xiaotian Hu

Y

Yiwang Chen

College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC), Nanchang University, Nanchang, China.