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Dithienonaphthalene-Based Non-fullerene Acceptors with Different bandgaps for Organic Solar Cells

机译:具有不同带隙的基于二噻吩萘的非富勒烯受体用于有机太阳能电池

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Compared to the traditional fullerene derivatives, non-fullerene acceptors show more tunable absorption bands as well as adjustable energy levels which are favorable for further PCE enhancement of organic solar cells. In order to enhance light-harvesting property of dithienonaphthalene (DTN)-based acceptors, we designed and synthesized two novel non-fullerene acceptors (DTNIF and DTNSF) based on a ladder-type DTN donor core flanked with two different acceptor units. In combination with a benchmark wide bandgap copolymer (PBDB-T), the best performance device based on DTNIF displayed a high PCE of 8.73% with a short-circuit current (Jsc) of 13.26 mA cm-2 and a large fill factor (FF) of 72.77%. With a reduced bandgap of DTNSF, the corresponding best performance device showed an increased Jsc of 14.49 mA cm-2 although only a moderate PCE of 7.15% was achieved. These findings offer a molecular design strategy to control the bandgap of DTN-based non-fullerene acceptors with improved light-harvesting.
机译:与传统的富勒烯衍生物相比,非富勒烯受体显示出更多的可调吸收带以及可调节的能级,这有利于进一步提高有机太阳能电池的PCE。为了增强基于二噻吩并萘(DTN)的受体的光收集性能,我们基于侧翼为两个不同受体单元的梯型DTN供体,设计并合成了两种新型的非富勒烯受体(DTNIF和DTNSF)。与基准宽带隙共聚物(PBDB-T)结合使用时,基于DTNIF的最佳性能器件显示出8.73%的高PCE,13.26 mA cm-2的短路电流(Jsc)和大的填充系数(FF) )的72.77%。在DTNSF的带隙减小的情况下,相应的最佳性能器件显示Jsc增加了14.49 mA cm-2,尽管仅实现了7.15%的中等PCE。这些发现提供了一种分子设计策略,可通过改善光捕获来控制基于DTN的非富勒烯受体的带隙。

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