Halogenation‐Engineered Acceptor Enables 20.14% Efficiency in Hydrocarbon‐Solvent Processed OSCs: From Binary Trade‐Offs to Ternary Synergy in Exciton and Energy Loss Management

J Jun Zhang W Weifei Wei (Guangdong Provincial Key Laboratory of New Energy Materials Service Safety Shenzhen Key Laboratory of New Information Display and Storage Materials College of Materials Science and Engineering Shenzhen University Shenzhen 518060 China) Z Zhenghui Luo Z Zhanxiang Chen (Shenzhen Key Laboratory of New Information Display and Storage Materials, College of Materials Science and Engineering) R Ruijie Ma M Mengyang Wang Y Yongmin Luo Y Yi Chan Z Zhaozhao Bi Y Yao Li J Jiaying Wu Q Qunping Fan W Wei Ma G Gang Li (State Key Laboratory of Molecular Reaction Dynamics and Dalian Coherent Light Source Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, China) C Chuluo Yang (Shenzhen Key Laboratory of New Information Display and Storage Materials, College of Materials Science and Engineering)

Abstract

AbstractHalogenation emerges as a key strategy to enhance the performance of organic solar cells (OSCs) by tuning molecular packing, energy levels, and charge dynamics. Here, we report three new benzo[a]phenazine‐core small‐molecule acceptors, namely NA5, NA6, and NA7, and systematically evaluate their photovoltaic properties in o‐xylene‐processed binary and ternary OSCs. Halogenation significantly strengthens intermolecular interactions, improves charge carrier mobility, and facilitates exciton dissociation, leading to a remarkable increase in binary device efficiencies from ∼2% (NA5) to over 17% (NA6, NA7). However, halogenation also increases charge‐transfer state character, which can induce higher nonradiative recombination and energy loss. Despite this drawback, the enhanced driving force for charge separation and improved morphological order enabled by halogenation outweigh the negative effects on energy loss. Notably, incorporation of NA7 into the PM6:BTP‐eC9 ternary system optimizes blend morphology, suppresses nonradiative recombination, and thus achieves a record power conversion efficiency of 20.14% (certified 19.93%)—the highest reported for OSCs processed with hydrocarbon solvents. These findings highlight the dual role of halogenation in modulating both beneficial and detrimental aspects of device energetics, providing new insights into molecular design strategies for high‐performance, environmental‐friendly OSCs.

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)

J

Jun Zhang

W

Weifei Wei

Guangdong Provincial Key Laboratory of New Energy Materials Service Safety Shenzhen Key Laboratory of New Information Display and Storage Materials College of Materials Science and Engineering Shenzhen University Shenzhen 518060 China

Z

Zhenghui Luo

Z

Zhanxiang Chen

Shenzhen Key Laboratory of New Information Display and Storage Materials, College of Materials Science and Engineering

R

Ruijie Ma

M

Mengyang Wang

Y

Yongmin Luo

Y

Yi Chan

Z

Zhaozhao Bi

Y

Yao Li

J

Jiaying Wu

Q

Qunping Fan

W

Wei Ma

G

Gang Li

State Key Laboratory of Molecular Reaction Dynamics and Dalian Coherent Light Source Dalian Institute of Chemical Physics, Chinese Academy of Sciences, 457 Zhongshan Road, Dalian 116023, China

C

Chuluo Yang

Shenzhen Key Laboratory of New Information Display and Storage Materials, College of Materials Science and Engineering