Selectively Modulating the Donor and Acceptor Aggregation Behaviors Through Solid Additive Isomerization Engineering for Organic Solar Cells Exceeding 20% Efficiency

K Keli Shi (Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China) H Haicui Liu (Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China) S Shucheng Qin Q Qianqian Zhao X Xiaoyu Mou (Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China) J Jvfang Liang (Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China) J Jia Yao (Zhejiang University , , 866 Yuhangtang Rd , ,) C Can Zhu L Lian Zhong J Jing Guo J Jinyuan Zhang Y Yilei Wu (Department of Chemical Engineering, Stanford University) Z Zhi‐Guo Zhang (Beijing Advanced Innovation Center for Soft Matter Science and Engineering Beijing University of Chemical Technology Beijing China) B Beibei Qiu Y Yongfang Li

Abstract

AbstractRegulating the film morphology is essential for achieving high‐performance organic solar cells (OSCs). Given the distinct features of donor and acceptor materials, designing solid additives to selectively control the aggregation behaviors of them represents a key strategy for further development of OSCs. Herein, a series of bithiophene isomers solid additives (2,2‐TT, 2,3‐TT, and 3,3‐TT) are designed for film morphology regulation. Systematic analysis reveals that the addition of 2,2‐TT significantly enhances the π–π stacking of L8‐BO, yet exerts a relatively limited effect on PM6 aggregation. Conversely, the incorporation of 3,3‐TT not only facilitates the formation of compact and highly ordered molecular packing of L8‐BO but also substantially promote the denser π–π stacking of PM6. Consequently, the PM6:L8‐BO‐based OSCs with 3,3‐TT treatment achieve a higher efficiency of 19.34%, benefitting from the balanced charge mobility and longer carrier lifetime. More impressively, the D18:L8‐BO‐based devices treated with 3,3‐TT deliver a remarkable efficiency of 20.32%, with an excellent fill factor of 82.47%, which ranks among the best values reported so far. This work highlights the critical role of the solid additive isomerization strategy in selectively regulating the aggregation characteristics of donor and acceptor materials, thereby facilitating the further advancement of OSCs field.

Article Details

Volume / Issue Vol. 64, Issue 43
Published October 20, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (15)

K

Keli Shi

Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China

H

Haicui Liu

Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China

S

Shucheng Qin

Q

Qianqian Zhao

X

Xiaoyu Mou

Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China

J

Jvfang Liang

Key Laboratory of Solid State Optoelectronic Devices of Zhejiang Province College of Physics and Electronic Information Engineering Zhejiang Normal University Jinhua Zhejiang 321004 China

J

Jia Yao

Zhejiang University , , 866 Yuhangtang Rd , ,

C

Can Zhu

L

Lian Zhong

J

Jing Guo

J

Jinyuan Zhang

Y

Yilei Wu

Department of Chemical Engineering, Stanford University

Z

Zhi‐Guo Zhang

Beijing Advanced Innovation Center for Soft Matter Science and Engineering Beijing University of Chemical Technology Beijing China

B

Beibei Qiu

Y

Yongfang Li