Modulation of Morphological, Mechanical, and Photovoltaic Properties of Ternary Organic Photovoltaic Blends for Optimum Operation

Ternary solar cells comprising both fullerene and nonfullerene acceptors have shown a rapid increase in power conversion efficiency, which holds promise in commercial applications. Despite the rapid progress, there is still a lack of fundamental understanding of the relations between microstructure...

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Veröffentlicht in:Advanced energy materials 2021-02, Vol.11 (8), p.n/a
Hauptverfasser: Peng, Zhongxiang, Jiang, Kui, Qin, Yunpeng, Li, Miaomiao, Balar, Nrup, O'Connor, Brendan T., Ade, Harald, Ye, Long, Geng, Yanhou
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container_issue 8
container_start_page
container_title Advanced energy materials
container_volume 11
creator Peng, Zhongxiang
Jiang, Kui
Qin, Yunpeng
Li, Miaomiao
Balar, Nrup
O'Connor, Brendan T.
Ade, Harald
Ye, Long
Geng, Yanhou
description Ternary solar cells comprising both fullerene and nonfullerene acceptors have shown a rapid increase in power conversion efficiency, which holds promise in commercial applications. Despite the rapid progress, there is still a lack of fundamental understanding of the relations between microstructure and (photovoltaic/mechanical) properties in these ternary blend systems. In this work, the dependence of molecular packing, phase separation, mechanical properties, and photovoltaic performance on acceptor composition of a recently certificated ternary system is thoroughly investigated by combined scattering and microscopy characterizations. It is demonstrated that incorporating a small amount (20% by weight) PC71BM to the PM6:N3 binary blend can afford the best device efficiency and the highest ductility simultaneously. This maximum performance is due to the optimized molecular order, orientational texture, and phase separation. Additionally, increasing the amount of PC71BM results in higher elastic modulus, as probed by two distinct methods. A more crucial observation is that the elastic modulus of ternary blends can be well captured by an extended Halpin–Tsai model. This finding is expected to enable the prediction of the elastic modulus of various kinds of ternary blends that are widely used in solar cells and other electronics. The morphological and mechanical properties of a high‐efficiency ternary organic photovoltaic blend comprising fullerene and nonfullerene acceptors are characterized in detail. The device efficiency and crack‐onset strain are maximized at the same blend composition. Furthermore, the elastic modulus of ternary blends can be captured by a theoretical model. These relations pave the way to design efficient and stretchable organic photovoltaics.
doi_str_mv 10.1002/aenm.202003506
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A more crucial observation is that the elastic modulus of ternary blends can be well captured by an extended Halpin–Tsai model. This finding is expected to enable the prediction of the elastic modulus of various kinds of ternary blends that are widely used in solar cells and other electronics. The morphological and mechanical properties of a high‐efficiency ternary organic photovoltaic blend comprising fullerene and nonfullerene acceptors are characterized in detail. The device efficiency and crack‐onset strain are maximized at the same blend composition. Furthermore, the elastic modulus of ternary blends can be captured by a theoretical model. 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source Wiley Online Library Journals Frontfile Complete
subjects ductility
elastic modulus
Energy conversion efficiency
film morphology
Mechanical properties
Mixtures
Modulus of elasticity
nonfullerene acceptors
Phase separation
Photovoltaic cells
Solar cells
ternary organic solar cells
Ternary systems
title Modulation of Morphological, Mechanical, and Photovoltaic Properties of Ternary Organic Photovoltaic Blends for Optimum Operation
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