Abstract
Organic solar cells (OSCs) based on nonfullerene acceptors have achieved remarkable efficiency improvements, yet the structure–property relationships of oligomeric acceptors, particularly the role of π-bridge rigidity in governing molecular packing and device physics, remain insufficiently understood. Here, we report two dimeric acceptors, DY-TT and DY-T-T, constructed from an identical monomeric backbone but featuring distinct π-bridge linkers to elucidate the impact of linker rigidity on photovoltaic performance. Compared with the more rigid DY-TT containing a fused bithiophene linker, the DY-T-T acceptor with a more flexible bithiophene linker exhibits a slightly narrower optical bandgap and more favorable energy-level alignment. In the corresponding PM6-based blends, DY-T-T enables enhanced charge generation and a more optimized phase-separated morphology. Moreover, the PM6:DY-T-T blend shows more coherent molecular packing and reduced trap-assisted recombination, which are attributed to its moderate conformational flexibility. As a result, the DY-T-T-based device delivers an improved power conversion efficiency of 18.92%, outperforming the DY-TT counterpart (17.90%) with simultaneously improved short-circuit current density and fill factor. These findings demonstrate that rational modulation of linker rigidity represents an effective molecular design strategy for advancing high-performance oligomeric acceptors in OSCs.
| Original language | English |
|---|---|
| Article number | e70391 |
| Journal | Solar RRL |
| Volume | 10 |
| Issue number | 11 |
| DOIs | |
| State | Published - 15 Jun 2026 |
UN SDGs
This output contributes to the following UN Sustainable Development Goals (SDGs)
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SDG 7 Affordable and Clean Energy
Keywords
- dimeric acceptors
- linker rigidity
- oligomers
- organic solar cells
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