材料科学
光活性层
低聚物
有机太阳能电池
三元运算
能量转换效率
X射线光电子能谱
化学工程
相(物质)
吸收(声学)
分子工程
表面能
结合能
光电子学
有机半导体
化学物理
聚合物太阳能电池
太阳能电池
表面工程
能量转换
芯(光纤)
图层(电子)
阴极
光化学
聚合物
侧链
太阳能
分析化学(期刊)
电极
量子效率
表层
光伏
活动层
磷光
作者
Jun Xu,Liang Wang,Jingchao Cheng,Weiyi Xia,Chen Chen,Zirui Gan,Junqi Liu,Jing Zhou,Zexin Chen,Hui Wang,Dan Liu,Wei Li,Tao Wang
摘要
ABSTRACT Oligomerized non‐fullerene acceptors (o‐NFAs) have emerged as a promising material for constructing efficient and stable organic solar cells (OSCs). However, the precise role of their molecular geometry and surface properties in governing the vertical phase distribution for efficient charge collection near electrodes of OSCs remains underexplored. In this work, two trimerized star‐shaped oligomer acceptors, TAQ‐15F and TBQ‐15F, are synthesized with fused and non‐fused trithiophene‐benzene cores. We find although this core modulation barely affects the energy levels and absorption spectra, it substantially changes the surface free energy of these o‐NFAs and consequently influences their vertical phase distribution within the photoactive layer. With a more twisted conformation, TBQ‐15F allows its side chains to be ordered in out‐of‐plane and results in a much lower surface free energy compared to TAQ‐15F. When TBQ‐15F is incorporated into the classic D18/L8‐BO photoactive layer via layer‐by‐layer deposition, this reduced surface energy further correlates a more pronounced vertical stratification and gradient molecular distribution (acceptor‐rich near the cathode and donor‐rich near the anode) as revealed by angle‐dependent GIWAXS measurements and XPS depth profiling. Certified power conversion efficiency (PCE) of 20.8% with improved operational stability was achieved in the D18/L8‐BO+TBQ‐15F ternary OSCs.
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