Issue 45, 2024

Asymmetric liquid crystalline donors with two different end groups enable efficient all-small-molecule organic solar cells

Abstract

Asymmetric substitution on donors has been shown to be an effective approach to optimize the morphology and photovoltaic performance of all-small-molecule organic solar cells (ASM-OSCs), but this strategy is rarely applied in liquid crystalline small-molecule donors (SMDs). Herein, one of the two rhodanine (R) end groups on the well-known liquid crystalline molecule BTR-Cl is replaced by 2-ethylhexyl cyanoacetate (CA), yielding three new asymmetric SMDs, namely, BT-CAR2, BT-CAR4, and BT-CAR6, whose alkyl chain lengths on the rhodanine groups are 2, 4, and 6 carbon atoms, respectively. The asymmetric structure enhances intermolecular interactions, and the three SMDs all exhibit highly ordered edge-on orientations in the solid states. Notably, the BT-CAR4:Y6 film achieves a finely-tuned morphology due to the optimal miscibility between BT-CAR4 and Y6. Consequently, all three ASM-OSCs exhibit efficiencies of around 15%, significantly surpassing the previously reported efficiency of the BTR-Cl based counterpart (13.6%). Specifically, the BT-CAR4:Y6 device achieves the highest efficiency of 15.52%. This work presents a promising avenue for designing efficient SMDs for ASM-OSCs.

Graphical abstract: Asymmetric liquid crystalline donors with two different end groups enable efficient all-small-molecule organic solar cells

Supplementary files

Article information

Article type
Paper
Submitted
29 Aug 2024
Accepted
14 Oct 2024
First published
15 Oct 2024

J. Mater. Chem. A, 2024,12, 31163-31172

Asymmetric liquid crystalline donors with two different end groups enable efficient all-small-molecule organic solar cells

C. Wang, T. Chen, S. Li, Y. Shen, J. Yu, A. Wupur, Y. Luo, M. Wang, X. Ye, J. Wu, M. Shi and H. Chen, J. Mater. Chem. A, 2024, 12, 31163 DOI: 10.1039/D4TA06126H

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