Dynamic hydrogen-bonding enables high-performance and mechanically robust organic solar cells processed with non-halogenated solvent

H Haozhe He X Xiaojun Li J Jingyuan Zhang Z Zekun Chen (School of Biomedical Sciences and Engineering, Guangzhou International Campus) Y Yufei Gong H Hongmei Zhuo X Xiangxi Wu Y Yuechen Li S Shijie Wang (Yunnan Key Laboratory of International Rivers and Transboundary Eco-Security/Ministry of Education Key Laboratory for Transboundary Eco-Security of Southwest China, Institute of International Rivers and Eco-Security, Yunnan University) Z Zhaozhao Bi B Bohao Song K Kangkang Zhou T Tongling Liang W Wei Ma G Guanghao Lu (Frontier Institute of Science and Technology) 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)) L Lei Meng B Ben Zhang (Department of Chemistry, Engineering Research Center of Advanced Rare Earth Materials (Ministry of Education)) Y Yaowen Li Y Yongfang Li

Abstract

Abstract Developing active-layer systems with both high performance and mechanical robustness is a crucial step towards achieving future commercialization of flexible and stretchable organic solar cells (OSCs). Herein, we design and synthesize a series of acceptors BTA-C6, BTA-E3, BTA-E6, and BTA-E9, featuring the side chains of hexyl, and 3, 6, and 9 carbon-chain with ethyl ester end groups respectively. Benefiting from suitable phase separation and vertical phase distribution, the PM6:BTA-E3-based OSCs processed by o-xylene exhibit lower energy loss and improved charge transport characteristic and achieve a power conversion efficiency of 19.92% (certified 19.57%), which stands as the highest recorded value in binary OSCs processed by green solvents. Moreover, due to the additional hydrogen-bonding provided by ethyl ester side chain, the PM6:BTA-E3-based active-layer systems achieve enhanced stretchability and thermal stability. Our work reveals the significance of dynamic hydrogen-bonding in improving the photovoltaic performance, mechanical robustness, and morphological stability of OSCs.

Article Details

Volume / Issue Vol. 16, Issue 1
Published January 17, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (20)

H

Haozhe He

X

Xiaojun Li

J

Jingyuan Zhang

Z

Zekun Chen

School of Biomedical Sciences and Engineering, Guangzhou International Campus

Y

Yufei Gong

H

Hongmei Zhuo

X

Xiangxi Wu

Y

Yuechen Li

S

Shijie Wang

Yunnan Key Laboratory of International Rivers and Transboundary Eco-Security/Ministry of Education Key Laboratory for Transboundary Eco-Security of Southwest China, Institute of International Rivers and Eco-Security, Yunnan University

Z

Zhaozhao Bi

B

Bohao Song

K

Kangkang Zhou

T

Tongling Liang

W

Wei Ma

G

Guanghao Lu

Frontier Institute of Science and Technology

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)

L

Lei Meng

B

Ben Zhang

Department of Chemistry, Engineering Research Center of Advanced Rare Earth Materials (Ministry of Education)

Y

Yaowen Li

Y

Yongfang Li