Alkylthio side chain tuned the PM6 structure and elevated photovoltaic performance in ternary donor polymers†

Abstract

Modification of the conjugated polymer skeleton using side chain engineering is important for the development of efficient conjugated donor polymers. In this work, alkylthio-substituted BDD units (SBDD) were introduced into the high-efficiency donor PM6 to construct a series of conjugated polymers (PBDB-TF-S5, PBDB-TF-S10 and PBDB-TF-S20, with the molar ratios of SBDD as 5%, 10%, and 20%, respectively), and the effect of the third component SBDD on the photovoltaic performance of organic solar cells (OSCs) was systematically investigated. Firstly, we demonstrated that the highest occupied molecular orbital energy level (EHOMO) of polymers gradually decreases when the content of SBDD increases, which facilitates the obtaining of progressively higher open-circuit voltage (VOC) for the corresponding devices. Secondly, the detailed experimental results proved that OSCs based on PBDB-TF-S5:Y6 revealed a lower energy loss (Eloss), a suitable degree of crystallinity, a good miscibility with the Y6, a more balanced carrier mobilities and weaker charge recombination. Eventually, the power conversion efficiency (PCE) of the device based on PM6:Y6 (15.47%) was increased to 16.46% with JSC of 25.68 mA cm–2, VOC of 0.861 V and fill factor (FF) of 74.45% with the help of alkylthio side chain. This work provides a sufficient reference for optimizing the efficient donor polymer PM6 and confirms that PBDB-TF-S5 is a promising efficient donor polymer for OSCs.

Supplementary files

Article information

Article type
Paper
Submitted
14 Oct 2024
Accepted
23 Feb 2025
First published
24 Feb 2025

Polym. Chem., 2024, Accepted Manuscript

Alkylthio side chain tuned the PM6 structure and elevated photovoltaic performance in ternary donor polymers†

P. Guo, J. He, J. Liang, T. Wang, M. Li, J. Wei, W. Miao, Z. Liang, Y. Zhou, J. Tong, X. Wang, C. Wang and Y. Xia, Polym. Chem., 2024, Accepted Manuscript , DOI: 10.1039/D4PY01152J

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