Ultrafast Charge Generation Pathways in Photovoltaic Blends Based on Novel Star‐Shaped Conjugated Molecules |
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Authors: | Oleg V. Kozlov Yuriy N. Luponosov Sergei A. Ponomarenko Nina Kausch‐Busies Dmitry Yu Paraschuk Yoann Olivier David Beljonne Jérôme Cornil Maxim S. Pshenichnikov |
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Affiliation: | 1. Zernike Institute for Advanced Materials, University of Groningen, AG, Groningen, The Netherlands;2. Faculty of Physics & International Laser Center, Lomonosov Moscow State University, Moscow, Russia;3. Enikolopov Institute of Synthetic Polymeric Materials of the Russian Academy of Sciences, Moscow, Russia;4. Chemistry Department, Lomonosov Moscow State University, Moscow, Russia;5. Heraeus Precious Metals GmbH & Co. KG, Conductive Polymers Division (Clevios), Leverkusen, Germany;6. Service de Chimie des Materiaux Nouveaux, Université de Mons, Mons, Belgium |
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Abstract: | The quest for new materials is one of the main factors propelling recent advances in organic photovoltaics. Star‐shaped small molecules (SSMs) have been proven promising candidates as perspective donor material due to the increase in numbers of excitation pathways caused by the degeneracy of the lowest unoccupied molecular orbital (LUMO) level. In order to unravel the pathways of the initial photon‐to‐charge conversion, the photovoltaic blends based on three different SSMs with a generic structure of N(phenylene‐nthiophene‐dicyanovinyl‐alkyl)3 (n = 1–3), and [6,6]‐phenyl‐C71‐butyric acid methyl ester (PC71BM) acceptor are investigated by ultrafast photoinduced absorption spectroscopy assisted by density functional theory calculations. It is shown that both electron transfer from SSMs to PC71BM and hole transfer from PC71BM to SSMs are equally significant for generation of long‐lived charges. In contrast, intramolecular (intra‐SSM) charge separation results in geminate recombination and therefore constitutes a loss channel. Overall, up to 60% of long‐lived separated charges are generated at the optimal PC71BM concentrations. The obtained results suggest that further improvement of the SSM‐based solar cells is feasible via optimization of blend morphology and by suppressing the intra‐SSM recombination channel. |
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Keywords: | charge separation density functional theory organic solar cells pump– probe spectroscopy recombination dynamics |
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