蒽
材料科学
结晶度
接受者
光活性层
能量转换效率
活动层
化学工程
三元运算
聚合物太阳能电池
富勒烯
聚合物
有机太阳能电池
光电子学
纳米技术
光化学
图层(电子)
有机化学
复合材料
计算机科学
化学
物理
工程类
程序设计语言
凝聚态物理
薄膜晶体管
作者
Hongyu Fan,Hang Yang,Yue Wu,Okan Yildiz,Xianming Zhu,Tomasz Marszałek,Paul W. M. Blom,Chaohua Cui,Yongfang Li
标识
DOI:10.1002/adfm.202103944
摘要
Abstract Currently, morphology optimization methods for the fused‐ring nonfullerene acceptor‐based polymer solar cells (PSCs) empirically follow the treatments originally developed in fullerene‐based systems, being unable to meet the diverse molecular structures and strong crystallinity of the nonfullerene acceptors. Herein, a new and universal morphology controlling method is developed by applying volatilizable anthracene as solid additive. The strong crystallinity of anthracene offers the possibility to restrict the over aggregation of fused‐ring nonfullerene acceptor in the process of film formation. During the kinetic process of anthracene removal in the blend under thermal annealing, donor can imbed into the remaining space of anthracene in the acceptor matrix to form well‐developed nanoscale phase separation with bi‐continuous interpenetrating networks. Consequently, the treatment of anthracene additive enables the power conversion efficiency (PCE) of PM6:Y6‐based devices to 17.02%, which is a significant improvement with regard to the PCE of 15.60% for the reference device using conventional treatments. Moreover, this morphology controlling method exhibits general application in various active layer systems to achieve better photovoltaic performance. Particularly, a remarkable PCE of 17.51% is achieved in the ternary PTQ10:Y6:PC 71 BM‐based PSCs processed by anthracene additive. The morphology optimization strategy established in this work can offer unprecedented opportunities to build state‐of‐the‐art PSCs.
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