Perovskite solar cells with 12.8% efficiency by using conjugated quinolizino acridine based hole transporting material

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Abstract

A low band gap quinolizino acridine based molecule was designed and synthesized as new hole transporting material for organic-inorganic hybrid lead halide perovskite solar cells. The functionalized quinolizino acridine compound showed an effective hole mobility in the same range of the state-of-the-art spiro-MeOTAD and an appropriate oxidation potential of 5.23 eV vs the vacuum level. The device based on this new hole transporting material achieved high power conversion efficiency of 12.8% under the illumination of 98.8 mW cm -2, which was better than the well-known spiro-MeOTAD under the same conditions. Moreover, this molecule could work alone without any additives, thus making it to be a promising candidate for solid-state photovoltaic application. © 2014 American Chemical Society.

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Qin, P., Paek, S., Dar, M. I., Pellet, N., Ko, J., Grätzel, M., & Nazeeruddin, M. K. (2014). Perovskite solar cells with 12.8% efficiency by using conjugated quinolizino acridine based hole transporting material. Journal of the American Chemical Society, 136(24), 8516–8519. https://doi.org/10.1021/ja503272q

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