材料科学
胶束
分子
吸附
光伏系统
有机太阳能电池
纳米技术
能量转换效率
同种类的
化学工程
表面电荷
激子
膦酸盐
混合太阳能电池
曲面(拓扑)
分散性
化学物理
电荷(物理)
有机分子
载流子
纳米颗粒
烷基
小分子
光电子学
自组装
工作职能
胶体
作者
Yingxin Tian,Yuanpeng Xie,Zhilin Zhang,J Y Chen,Jingfu Tian,Xiaxia Yang,Dianyong Tang,Yanming Sun,Menglan Lv
摘要
Insufficient surface coverage persists as a critical limitation for self-assembled monolayers/multilayers (SAMs/SAMULs) in photovoltaic field. The co-assembled SAMULs (Co-SAMULs) strategy, which incorporates a guest self-assembled molecule, offers an effective solution. However, the working mechanism of the guest molecule is still not fully understood. Herein, benzo[b]thien-2-ylboronic acid (BBA) was introduced as a guest material into the host molecule system based on (4-(3,6-di(thiophen-3-yl)-9H-carbazol-9-yl)butyl) phosphonate (4PAThCz) to construct efficient Co-SAMULs. We found that BBA can fused into 4PAThCz micelles rather than forming individual micelles, respectively, thereby inhibiting micelle growth. During the film-forming process, BBA engages in synergistic adsorption with the host molecules, selectively fills the voids between host molecule and substantially improving surface coverage. Such a homogeneous and high-quality film effectively suppresses surface defect states, enhances interfacial charge transport capacity and minimizes non-radiative exciton recombination. As a result, a champion power conversion efficiency (PCE) of 21.26% (certificated as 20.79%) with an outstanding fill factor (FF) of 83.54% is achieved, representing the highest performances reported for organic solar cells (OSCs) to date.
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