Control of Effective Elastomer Density Enables Mechanically Robust and High‐Efficiency Intrinsically Stretchable Organic Solar Cells

M Ming Sun C Chen Wang M Mengfei Xiao (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan 250100 P. R. China) F Fengbo Sun H Hao Wang (Division of Quantitative Sciences, Department of Oncology Johns Hopkins University School of Medicine Baltimore Maryland USA) Y Yujie Xu Z Zhen Fu (School of Physics, State Key Laboratory of Crystal Materials) W Wenqing Zhang (Academy for Advanced Interdisciplinary Studies & Department of Materials Science and Engineering, Guangdong Provincial Key Laboratory of Computational Science and Material Design) X Xinxin Xia H Hang Yin M Maojie Zhang L Long Ye (School of Materials Science and Engineering, Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Key Laboratory of Organic Integrated Circuits, Ministry of Education, Collaborative innovation Center of Chemical Science and Engineering (Tianjin)) X Xiaoyan Du X Xiao‐Tao Hao (School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan People's Republic of China)

Abstract

Abstract Intrinsically stretchable organic solar cells (IS‐OSCs) are highly promising for next‐generation wearable electronics. The incorporation of thermoplastic elastomers (TPEs) provides a cost‐effective strategy to improve mechanical compliance. However, the influence of TPE structural diversity on device performance has been largely overlooked. In this work, the concept of effective elastomer density ( D e ) is introduced as a unified molecular descriptor to quantitatively evaluate how elastomer structures affect IS‐OSC morphology and functionality. It is demonstrated that increasing D e enhances stretchability by inducing domain coarsening and surface roughening in amorphous regions, but simultaneously prolongs exciton lifetimes and suppresses charge extraction and transport. Notably, IS‐OSCs achieve an optimal balance at a critical D e of 1.5 mol m −3 , delivering a high initial power conversion efficiency (PCE) of 14.3% and retaining 80% of the initial PCE at 30.6% strain, representing the best performance reported to date for IS‐OSCs employing the elastomer‐plasticization strategy. This descriptor‐based framework provides a predictive and generalizable guideline for the molecular design of elastomers in stretchable optoelectronic devices.

Article Details

Volume / Issue Vol. 38, Issue 2
Published January 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

M

Ming Sun

C

Chen Wang

M

Mengfei Xiao

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan 250100 P. R. China

F

Fengbo Sun

H

Hao Wang

Division of Quantitative Sciences, Department of Oncology Johns Hopkins University School of Medicine Baltimore Maryland USA

Y

Yujie Xu

Z

Zhen Fu

School of Physics, State Key Laboratory of Crystal Materials

W

Wenqing Zhang

Academy for Advanced Interdisciplinary Studies & Department of Materials Science and Engineering, Guangdong Provincial Key Laboratory of Computational Science and Material Design

X

Xinxin Xia

H

Hang Yin

M

Maojie Zhang

L

Long Ye

School of Materials Science and Engineering, Tianjin Key Laboratory of Molecular Optoelectronic Sciences, Key Laboratory of Organic Integrated Circuits, Ministry of Education, Collaborative innovation Center of Chemical Science and Engineering (Tianjin)

X

Xiaoyan Du

X

Xiao‐Tao Hao

School of Physics State Key Laboratory of Crystal Materials Shandong University Jinan People's Republic of China