Tethered Small‐Molecule Acceptor Refines Hierarchical Morphology in Ternary Polymer Solar Cells: Enhanced Stability and 19% Efficiency

Author:

Zhang Ming1,Chang Bowen1,Zhang Rui2,Li Shangyu1,Liu Xinpeng3,Zeng Liang1,Chen Qi1,Wang Li45,Yang Liangrong4,Wang Haiqiao6,Liu Jiangang3,Gao Feng2,Zhang Zhi‐Guo1ORCID

Affiliation:

1. State Key Laboratory of Chemical Resource Engineering Beijing Advanced Innovation Center for Soft Matter Science and Engineering Beijing University of Chemical Technology Beijing 100029 China

2. Department of Physics Biomolecular and organic electronics Chemistry and Biology (IFM) Linköping University Linköping SE‐58183 Sweden

3. School of Electronics and Information Northwestern Polytechnical University Xi'an Shaanxi 710072 China

4. Department of Materials Science and Engineering Monash University Clayton VIC 3800 Australia

5. CAS Key Laboratory of Green Process and Engineering State Key Laboratory of Biochemical Engineering Institute of Process Engineering Chinese Academy of Sciences Beijing 100190 China

6. Beijing Engineering Research Center for the Synthesis and Applications of Waterborne Polymers Beijing University of Chemical Technology Beijing 100029 China

Abstract

AbstractPolymer solar cells (PSCs) are promising for efficient solar energy conversion, but achieving high efficiency and device longevity within a bulk‐heterojunction (BHJ) structure remains a challenge. Traditional small‐molecule acceptors (SMAs) in the BHJ blend show thermodynamic instability affecting the morphology. In contrast, tethered SMAs exhibit higher glass transition temperatures, mitigating these concerns. Yet, they might not integrate well with polymer donors, causing pronounced phase separation and overpurification of mixed domains. Herein, a novel ternary device is introduced that uses DY‐P2EH, a tethered dimeric SMA with conjugated side‐chains as host acceptor, and BTP‐ec9, a monomeric SMA as secondary acceptor, which respectively possess hypomiscibility and hypermiscibility with the polymer donor PM6. This unique combination affords a parallel‐connected ternary BHJ blend, leading to a hierarchical and stable morphology. The ternary device achieves a remarkable fill factor of 80.61% and an impressive power conversion efficiency of 19.09%. Furthermore, the ternary device exhibits exceptional stability, retaining over 85% of its initial efficiency even after enduring 1100 h of thermal stress at 85 °C. These findings highlight the potential advantage of tethered SMAs in the design of ternary devices with a refined hierarchical structure for more efficient and durable solar energy conversion technologies.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Beijing Municipal Natural Science Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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