Issue 13, 2024

Non-fused ring electron acceptors employing diphenylamine substituted 2,2′-bithiazole cores for organic solar cell applications

Abstract

Herein, we report the synthesis of three 2,2′-bithiazole based A–D–A′–D–A type non-fused ring electron acceptors (NFREAs) with different diphenylamine groups as the side-chain (Me-2F, C4-2F, and tBu–2F). These molecules achieve bandgaps of ca. 1.5 eV with the same conjugated backbone. However, the subtle side-chain variations significantly influence the optoelectronic properties of acceptors, the molecular orientation, and the final solar cell performance. As a result, the PM6:C4-2F based device achieves the best power conversion efficiency of 11.66% with a JSC of 18.47 mA cm−2, a Voc of 0.912 V, and a FF of 69.2% among three NFREA devices due to the efficient charge transfer, less recombination, face-on orientation and more balanced charge transport. These results highlight that 2,2′-bithiazole with diphenylamine side groups is a promising building block to construct high-performance and low-cost A–D–A′–D–A type NFREAs, and alkyl chain engineering on the bulky side groups significantly influences the molecular orientation and solar cell performance.

Graphical abstract: Non-fused ring electron acceptors employing diphenylamine substituted 2,2′-bithiazole cores for organic solar cell applications

Supplementary files

Article information

Article type
Paper
Submitted
05 Feb 2024
Accepted
29 Feb 2024
First published
01 Mar 2024

J. Mater. Chem. C, 2024,12, 4690-4698

Non-fused ring electron acceptors employing diphenylamine substituted 2,2′-bithiazole cores for organic solar cell applications

S. Wang, Y. Lin, F. Dong, Z. Ma, Z. Tang and M. Wang, J. Mater. Chem. C, 2024, 12, 4690 DOI: 10.1039/D4TC00502C

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