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The Physics of Small Molecule Acceptors for Efficient and Stable Bulk Heterojunction Solar Cells

机译:高效稳定的大体积异质结太阳能电池的小分子受体的物理学

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Organic bulk heterojunction solar cells based on small molecule acceptors have recently seen a rapid rise in the power conversion efficiency with values exceeding 13%. This impressive achievement has been obtained by simultaneous reduction of voltage and charge recombination losses within this class of materials as compared to fullerene-based solar cells. In this contribution, the authors review the current understanding of the relevant photophysical processes in highly efficient nonfullerene acceptor (NFA) small molecules. Charge generation, recombination, and charge transport is discussed in comparison to fullerene-based composites. Finally, the authors review the superior light and thermal stability of nonfullerene small molecule acceptor based solar cells, and highlight the importance of NFA-based composites that enable devices without early performance loss, thus resembling so-called burn-in free devices.
机译:最近,基于小分子受体的有机体异质结太阳能电池的功率转换效率迅速提高,其值超过13%。与基于富勒烯的太阳能电池相比,通过同时降低此类材料内的电压和电荷复合损耗,已经获得了令人印象深刻的成就。在这项贡献中,作者回顾了对高效非富勒烯受体(NFA)小分子中有关光物理过程的当前理解。与基于富勒烯的复合材料相比,讨论了电荷产生,重组和电荷传输。最后,作者回顾了基于非富勒烯小分子受体的太阳能电池优异的光稳定性和热稳定性,并强调了基于NFA的复合材料的重要性,这种复合材料可使器件无早期性能损失,因此类似于所谓的免老化器件。

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