化学
堆积
有机太阳能电池
侧链
离解(化学)
聚合物太阳能电池
激子
活动层
烷基
异质结
噻吩
化学工程
接受者
共轭体系
能量转换效率
光电子学
化学物理
聚合物
图层(电子)
材料科学
有机化学
物理
工程类
量子力学
薄膜晶体管
凝聚态物理
作者
Jing Zhou,Liang Wang,Chenhao Liu,Chuanhang Guo,Chen Chen,Yuandong Sun,Yujie Yang,Jingchao Cheng,Zirui Gan,Zhenghong Chen,Wei Sun,Jinpeng Zhou,Weiyi Xia,Dan Liu,Wei Li,Tao Wang
摘要
Constructing fibril morphology has been believed to be an effective method of achieving efficient exciton dissociation and charge transport in organic solar cells (OSCs). Despite emerging endeavors on the fibrillization of organic semiconductors via chemical structural design or physical manipulation, tuning of the fibril geometry, i.e., width and length, for tailored optoelectronic properties remains to be studied in depth. In this work, a series of alkoxythiophene additives featuring varied alkyl side chains connected to thiophene are designed to modulate the growth of fibril aggregates in cutting-edge polymer donors PM6 and D18. Molecular dynamics simulations and morphological characterizations reveal that these additives preferentially locate near and entangle with the side chains of polymer donors, which enhance the conjugated backbone stacking of polymer donors to form nanofibrils with the width expanding from 12.6 to 21.8 nm and the length increasing from 98.3 to 232.7 nm. This nanofibril structure is feasible to acquire efficient exciton dissociation and charge transport simultaneously. By integrating the fibril PM6 and L8-BO as the donor and acceptor layers in pseudo-bulk heterojunction (p-BHJ) OSCs via layer-by-layer deposition, an improvement of power conversion efficiency (PCE) from 18.7% to 19.8% is observed, contributed by enhanced light absorption, charge transport, and reduced charge recombination. The versatility of these additives is also verified in D18:L8-BO OSCs, with enhanced PCE from 19.3% to 20.1%, which is among the highest values reported for OSCs.
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