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首页> 外文期刊>Materials Chemistry Frontiers >Quaternary polymer solar cells with over 13 efficiency enabled by improving film-morphologies via binary mixed fullerene additive
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Quaternary polymer solar cells with over 13 efficiency enabled by improving film-morphologies via binary mixed fullerene additive

机译:第四纪聚合物太阳能电池超过13效率通过改善film-morphologies启用通过二元混合富勒烯添加剂

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In this article, we report two new cases of quaternary polymer solar cells with over 13% efficiency. By introducing bis-PC71BM:PC61BM or bis-PC71BM:IC60BA into a known nonfullerene system – PBDB-T:IT-M, the quaternary solar cells significantly outperform the nonfullerene binary and ternary (PBDB-T:IT-M: fullerene) cells with a significant increase in short-circuit current-density (18.2 vs. 16.5 and 16.8–17.4 mA cm-2 , respectively) and fill-factor (0.73 vs. 0.67 and 0.705–0.726, respectively) and hence large power conversion efficiencies (13.3% for the quaternary vs. 11% for the binary and 12% for the ternary solar cells). Compared with the clear phase-separated domains in the bis-PC71BM based ternary blend, the PC61BM based film showed the finest morphologies and the IC60BA based film had the largest domains. In sequence, the bis- PC71BM:PC61BM-based quaternary blend showed finer morphology than the bis-PC71BM:IC60BA based blend, while both the quaternary blends showed clear phase-separated bright and dark domains. One- dimensional grazing incidence X-ray diffraction (1D GIXRD) data indicated that the addition of PC61BM and IC60BA helped more IT-M molecules to form compacted p–p stacks at the out-of-plane directions, which resulted in the increase in electron mobilities. Our results indicate that the use of the fourth fullerene component provides more choices and more mechanisms than the ternary systems for tuning the photon- to-electron conversion; therefore, this study sheds light on the realization of high-efficiency polymer solar cells by designing multi-acceptor component energy levels.
机译:在本文中,我们报告两个新病例第四纪聚合物太阳能电池超过13%效率。bis-PC71BM: IC60BA到一个已知的nonfullerene系统——PBDB-T:它m,第四纪太阳能电池明显优于nonfullerene二进制和三元(PBDB-T:它m:富勒烯)细胞的显著增加短路电流密度(18.2 vs 16.5和16.8 -17.4 mA分别cm-2)和填充因数(0.73 vs。分别为0.67和0.705 - -0.726),因此大型电力转换效率(13.3%第四纪二进制和12%比11%三元太阳能电池)。基于bis-PC71BM乳剂的域基于三元混合,PC61BM电影展示了最好的形态和基于IC60BA的电影最大的领域。PC71BM: PC61BM-based第四纪混合显示比bis-PC71BM形态:IC60BA基础混合,而四元混合显示清晰的分离的光明与黑暗域。一维的掠入射x射线衍射(1 d GIXRD)数据表明,PC61BM和IC60BA帮助它m分子形成的压实p p栈出平面方向,这导致了增加电子的机动性。表明第四富勒烯的使用组件提供了更多的选择和更多比的三元系统调优机制光子-电子转换;这项研究揭示了实现高效聚合物太阳能电池设计multi-acceptor组件能量水平。

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