Correlative molecular-to-mesoscale evolution in conjugated polymers for intrinsically stretchable organic photovoltaics

W Wenkai Zhong G Guillaume Freychet (University of Grenoble Alpes, CEA, Leti, Grenoble) G Gregory M. Su S Siyi Wang (State Key Laboratory of Advanced Fiber Materials, Key Laboratory of Science and Technology of Eco-Textile, Ministry of Education, College of Chemistry and Chemical Engineering) X Xuanang Luo X Xinrui Liu W Wenyu Yang (Laboratory of Advanced Materials, Department of Chemistry, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, State Key Laboratory of Molecular Engineering of Polymers, Collaborative Innovation Center of Chemistry for Energy Materials (2011-iChEM), College of Chemistry and Materials) L Lei Yu X Xuefei Wu Y Yulong Li T Thomas J. Ferron T Thomas P. Russell (Polymer Science & Engineering Department, Conte Center for Polymer Research) L Lei Ying F Fei Huang Y Yongming Zhang (Department of Pharmacology and Chemical Biology, Institute of Molecular Medicine, Collaborative Innovation Center for Clinical and Translational Science by Chinese Ministry of Education & Shanghai) C Cheng Wang F Feng Liu

Abstract

Abstract Conjugated polymer thin films offer a unique combination of tunable optoelectronic properties and mechanical flexibility, making them as promising materials for intrinsically stretchable optoelectronic devices. However, achieving both mechanical robustness and high device performance remains a key challenge. Addressing this requires a fundamental understanding of how molecular and mesoscale structures evolve under mechanical strain. Here, we employ a comprehensive suite of X-ray spectroscopy and scattering techniques to investigate the multiscale structural evolution of conjugated polymer thin films during uniaxial deformation. We uncover a two-stage morphological response: an initial stage characterized by polymer chain alignment and rapid crystallite disruption, followed by continued chain orientation accompanied by intrachain torsion at higher strains. These correlative structural adaptations govern key material properties, including stress dissipation, optical absorption, and photovoltaic performance. Our findings establish a mechanistic framework for understanding deformation in semiconducting polymers and provide design principles for developing mechanically robust, high-performance stretchable electronics.

Article Details

Volume / Issue Vol. 17, Issue 1
Published February 20, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (17)

W

Wenkai Zhong

G

Guillaume Freychet

University of Grenoble Alpes, CEA, Leti, Grenoble

G

Gregory M. Su

S

Siyi Wang

State Key Laboratory of Advanced Fiber Materials, Key Laboratory of Science and Technology of Eco-Textile, Ministry of Education, College of Chemistry and Chemical Engineering

X

Xuanang Luo

X

Xinrui Liu

W

Wenyu Yang

Laboratory of Advanced Materials, Department of Chemistry, Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, State Key Laboratory of Molecular Engineering of Polymers, Collaborative Innovation Center of Chemistry for Energy Materials (2011-iChEM), College of Chemistry and Materials

L

Lei Yu

X

Xuefei Wu

Y

Yulong Li

T

Thomas J. Ferron

T

Thomas P. Russell

Polymer Science & Engineering Department, Conte Center for Polymer Research

L

Lei Ying

F

Fei Huang

Y

Yongming Zhang

Department of Pharmacology and Chemical Biology, Institute of Molecular Medicine, Collaborative Innovation Center for Clinical and Translational Science by Chinese Ministry of Education & Shanghai

C

Cheng Wang

F

Feng Liu