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Dramatic performance enhancement for large bandgap thick-film polymer solar cells introduced by a difluorinated donor unit

机译:由二氟化供体单元引入的大带隙厚膜聚合物太阳能电池的显着性能增强

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摘要

We report a large bandgap (1.9 eV) donor-acceptor copolymer (named PffT2-FTAZ) that enables polymer solar cells with a high power conversion efficiency of 7.8%. An important structural feature of the PffT2-FTAZ polymer is a difluorinated donor unit (3,3-difluoro-2,2-bithiophene, or, ffT2) that introduces several surprising and/or beneficial effects. By comparing PffT2-FTAZ with the analog polymer (PT2-FTAZ) without fluorination on the bithiophene donor unit, it is found that the ffT2 unit effectively lowers the HOMO and LUMO energy levels of the polymer and slightly reduces optical bandgap. It also introduces strong interchain aggregation for the polymer in solution, which leads to a highly crystalline polymer film and reasonably high hole transport mobility. On the other hand, the PffT2-FTAZ: fullerene blend still exhibits a reasonably small polymer domain size suitable for polymer solar cell operation. All these positive factors combined leads to dramatically enhanced performance for the polymer solar cells with the power conversion efficiency increasing from 2.8% for PT2-FTAZ to 7.8% for f PffT2-FTAZ. The high PSC performance of PffT2-FTAZ makes it a promising candidate for high efficiency tandem PSCs. (C) 2015 Elsevier Ltd. All rights reserved.
机译:我们报道了一种大带隙(1.9 eV)供体-受体共聚物(命名为PffT2-FTAZ),该聚合物能够使聚合物太阳能电池具有7.8%的高功率转换效率。 PffT2-FTAZ聚合物的重要结构特征是引入了一些令人惊讶和/或有益效果的二氟化供体单元(3,3-二氟-2,2-联噻吩或ffT2)。通过将PffT2-FTAZ与在联噻吩供体单元上没有氟化的类似聚合物(PT2-FTAZ)进行比较,发现ffT2单元有效降低了聚合物的HOMO和LUMO能级,并略微降低了光学带隙。它还为溶液中的聚合物引入了强烈的链间聚集,从而导致了高结晶度的聚合物膜和相当高的空穴传输迁移率。另一方面,PffT2-FTAZ:富勒烯共混物仍显示出适合聚合物太阳能电池操作的相当小的聚合物畴尺寸。所有这些积极因素共同导致聚合物太阳能电池的性能大大提高,功率转换效率从PT2-FTAZ的2.8%提高到f PffT2-FTAZ的7.8%。 PffT2-FTAZ的高PSC性能使其成为高效串联PSC的有希望的候选者。 (C)2015 Elsevier Ltd.保留所有权利。

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