Improvement of short circuit current density by intermolecular interaction between polymer backbones for polymer solar cells

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Abstract

Benzodithiophene- and quinoxaline (Qu)-based derivatives were used to obtain two kinds of D-π-A-type polymers, poly(diethylhexyloxy benzo dithiophene-dioctyloxy dithiophene diphenyl Qu) (PBDTAQ) and poly(diethylhexyloxy benzo dithiophene-dioctyloxy dithiophene dibenzophenazine (PBDTAFQ), through a Stille coupling reaction. Phenyl (Qu) and fused-phenyl (phenazine, Pz) were introduced in locations 2 and 3, respectively, of Qu derivatives. For the polymer introduced with Pz, the tilt angle (θ 3) between the 2,3-carbon and the bonded phenyl side chains of Qu decreased from 44.06° to 0°. As a result, PBDTAFQ displayed a higher absorbance compared with PBDTAQ at the UV-vis absorption spectra in the film state. Also, the intra/intermolecular charge transfer (ICT) peak intensity of 500-700 nm increased relative to the solution peak. Furthermore, the results of the X-ray diffraction measurement suggest that the d π -spacing distance for PBDTAFQ (d π =3.89 Å) was smaller than that for PBDTAQ (d π = 4.36Å), exhibiting a stronger intermolecular interaction. PBDTAQ showed an edge-on dominant orientation, whereas the PBDTAFQ thin films showed an increase in the face-on structure for crystallinity. As a consequence, PBDTAFQ showed an improved short current density (J SC) in organic photovoltaic cells. The PBDTAFQ:PC 70 BM blend-based devices that were fabricated exhibited a power conversion efficiency of 3.0% at a 1:5 ratio and reached 3.4% when treated with additive and methanol.

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Lee, T. H., Choi, M. H., Jeon, S. J., Nam, S. J., Han, Y. W., Haw, J. R., & Moon, D. K. (2017). Improvement of short circuit current density by intermolecular interaction between polymer backbones for polymer solar cells. Polymer Journal, 49(1), 177–187. https://doi.org/10.1038/pj.2016.104

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