Molecularly Interlocked Interfaces Enable Record‐Efficiency Stretchable Organic Photovoltaics

H Haojie Li S Shumin Zeng H Hua Zhao Q Qianjin Liu (College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC)/ Institute of Polymers and Energy Chemistry (IPEC) Nanchang University 999 Xuefu Avenue Nanchang 330031 China) T Tangyue Xue S Siqi Liu H Hongxiang Li (College of Polymer Science and Engineering State Key Laboratory of Polymer Materials Engineering) L Lin Hu (The High Magnetic Field Laboratory, Hefei Institutes of Physical Science) E Erjun Zhou (College of Biological and Chemical Engineering) M Melusi Khumalo (Department of Mathematical Sciences University of South Africa Cnr Christian de Wet Rd & Pioneer Avenue Florida 1709 South Africa) 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 The development of stretchable organic solar cells (s‐OSCs) demands concurrent breakthroughs in mechanical compliance and electronic properties, and the challenge is rooted in the intrinsic mechanical mismatch between organic semiconductors and metal electrodes. Here, this study proposes dual‐phase interface engineering strategies to reconcile these conflicting requirements through molecularly interlocked conductive elastomers. Dynamic stress dissipation through dynamic bond plasticity is achieved by embedding a 3D interpenetrating conducting elastomer network within the electron transport layer (ETL). The strategy creates gradient modulus interfaces through Ag coordination‐enabled nanocomposite bonding, suppressing crack propagation velocities and reduces the interfacial mechanical mismatch phenomenon. Eventually, the PCE of 19.58% is achieved on the small‐area flexible devices, which is one of the highest PCEs for flexible organic solar cells (f‐OSCs) to date. Notably, the stretchable devices retain over the PCE of 10% under 100% tensile strain, surpassing previous stretchable photovoltaic devices. To further validate the potential of this strategy for large‐area module applications, 25 cm 2 ‐based flexible and stretchable modules are prepared with PCEs of 16.74% and 14.48%, respectively. The work redefines material design rules for deformable electronics by establishing a generic mechanically adaptive framework that synchronizes interfacial dynamics across molecular to macroscopic scales.

Article Details

Volume / Issue Vol. 37, Issue 33
Published August 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (12)

H

Haojie Li

S

Shumin Zeng

H

Hua Zhao

Q

Qianjin Liu

College of Chemistry and Chemical Engineering/Film Energy Chemistry for Jiangxi Provincial Key Laboratory (FEC)/ Institute of Polymers and Energy Chemistry (IPEC) Nanchang University 999 Xuefu Avenue Nanchang 330031 China

T

Tangyue Xue

S

Siqi Liu

H

Hongxiang Li

College of Polymer Science and Engineering State Key Laboratory of Polymer Materials Engineering

L

Lin Hu

The High Magnetic Field Laboratory, Hefei Institutes of Physical Science

E

Erjun Zhou

College of Biological and Chemical Engineering

M

Melusi Khumalo

Department of Mathematical Sciences University of South Africa Cnr Christian de Wet Rd & Pioneer Avenue Florida 1709 South Africa

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.