材料科学
接受者
有机太阳能电池
三元运算
能量转换效率
纳米技术
分子动力学
合理设计
实现(概率)
工作(物理)
位阻效应
相(物质)
环己烷
光伏系统
纳米尺度
结晶
纳米结构
光电流
共形矩阵
并五苯
有机电子学
纳米棒
化学物理
化学工程
激子
偶氮苯
混溶性
极性(国际关系)
聚合物太阳能电池
作者
Mei Luo,Siyu Zhao,Lingchen Kong,Qihua He,Ming Chen,Xiyue Yuan,Mingke Li,Xuanang Luo,Weitao Qi,Bohao Song,Guanghao Lu,Z. X. Zhang,Guokai Jia,Junwu Chen
摘要
ABSTRACT Layer‐by‐layer (LBL) technique offers a promising platform for optimal vertical phase separation in organic solar cells (OSCs). Nevertheless, the realization of high‐performance LBL‐OSCs is fundamentally limited by solvent‐induced swelling during deposition, a process that promotes uncontrolled donor–acceptor interdiffusion, thereby constraining device performance. To address this challenge, we introduce a molecular design strategy that incorporates a novel third component, BTA‐CyH. Engineered with a rigid cyclohexane unit at the terminus of the N‐side chain in benzotriazole unit, the BTA‐CyH acceptor leverages steric hindrance and self‐assembly to precisely modulate the interpenetration dynamics of the acceptor during LBL film formation. Incorporating 10 wt.% BTA‐CyH into the L8‐BO layer serves a dual function: it enhances donor–acceptor miscibility to promote more D/A (donor/acceptor) interfaces and efficient exciton dissociation, while simultaneously regulating crystallization dynamics by suppressing excessive aggregation and fostering improved molecular ordering and crystallinity. Consequently, the ternary OSCs achieve a remarkable power conversion efficiency (PCE) of 19.73%. With Ph‐4PACz as the hole extraction layer, over 20% efficiency is demonstrated in D18/L8‐BO:BTA‐CyH‐based device. This work highlights rational side‐chain engineering as a powerful and generalizable strategy for manipulating vertical composition profiles and interfacial nanostructures in LBL‐OSCs, paving the way for further advances in sequentially fabricated high‐performance OSCs.
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