Enhancement of the internal quantum efficiency in strongly coupled P3HT-C60organic photovoltaic cells using Fabry-Perot cavities with varied cavity confinement

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Abstract

The short exciton diffusion length in organic semiconductors results in a strong dependence of the conversion efficiency of organic photovoltaic (OPV) cells on the morphology of the donor-acceptor bulk-heterojunction blend. Strong light-matter coupling provides a way to circumvent this dependence by combining the favorable properties of light and matter via the formation of hybrid exciton-polaritons. By strongly coupling excitons in P3HT-C60 OPV cells to Fabry-Perot optical cavity modes, exciton-polaritons are formed with increased propagation lengths. We exploit these exciton-polaritons to enhance the internal quantum efficiency of the cells, determined from the external quantum efficiency and the absorptance. Additionally, we find a consistent decrease in the Urbach energy for the strongly coupled cells, which indicates the reduction of energetic disorder due to the delocalization of exciton-polaritons in the optical cavity.

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De Jong, L. M. A., Berghuis, A. M., Abdelkhalik, M. S., Van Der Pol, T. P. A., Wienk, M. M., Janssen, R. A. J., & Gómez Rivas, J. (2024). Enhancement of the internal quantum efficiency in strongly coupled P3HT-C60organic photovoltaic cells using Fabry-Perot cavities with varied cavity confinement. Nanophotonics, 13(14), 2531–2540. https://doi.org/10.1515/nanoph-2023-0613

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