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Non-Volatile Perfluorophenyl-Based Additive for Enhanced Efficiency and Thermal Stability of Nonfullerene Organic Solar Cells via Supramolecular Fluorinated Interactions

机译:非挥发性全氟苯基添加剂通过超分子氟化相互作用提高非富勒烯有机太阳能电池的效率和热稳定性

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摘要

A novel non-volatile additive, fluorinated bis(perfluorophenyl)pimelate (BF7), is demonstrated to effectively improve both the efficiency and thermal stability of a highly efficient organic solar cell (OSC), comprising fluorinated Y6 as the small-molecule acceptor and PM6 as the polymer donor. Processed with optimized 0.5 wt BF7 in solution, the PM6:Y6:BF7 device achieves an elevated power conversion efficiency (PCE) of 17.01, compared to 15.16 of that processed without BF7. Moreover, the BF7-elevated PCE can sustain 95 of the best PCE over 100 degrees C annealing for 72 h. Grazing incidence X-ray scattering and differential scanning calorimetry results consistently indicate that BF7 in the PM6:Y6:BF7 device interacts preferentially with Y6, resulting in improved fractal-like network structures of the active layer with optimized size and orientation of Y6 nano-crystallites and elevated thermal stability. Molecular simulation also supports that the observed structure and thermal stability is associated with the F-pi noncovalent supramolecular interactions between the perfluorophenyl moieties of BF7 and difluorophenyl-based FIC-end-groups of Y6. Similar bifunctional BF7 effects are also observed in the well-known PM6:IT-4F system, suggesting that adding BF7 for concomitantly improved PCE and thermal stability might extend generally to OSCs that feature small molecule acceptors of difluorophenyl end-groups.
机译:研究表明,一种新型非挥发性添加剂氟化双(全氟苯基)庚二酸酯(BF7)可有效提高高效有机太阳能电池(OSC)的效率和热稳定性,该电池由氟化Y6作为小分子受体,PM6作为聚合物供体。PM6:Y6:BF7 器件在溶液中使用优化的 0.5 wt% BF7 进行处理,实现了 17.01% 的功率转换效率 (PCE),而未使用 BF7 时则提高了 15.16%。此外,BF7升高的PCE可以在100°C退火72 h内维持95%的最佳PCE。掠入射、X射线散射和差示扫描量热法结果一致表明,PM6:Y6:BF7器件中的BF7优先与Y6相互作用,从而改善了活性层的分形状网络结构,优化了Y6纳米晶的尺寸和取向,提高了热稳定性。分子模拟还支持观察到的结构和热稳定性与BF7的全氟苯基部分和Y6的二氟苯基基FIC端基之间的F-pi非共价超分子相互作用有关。在众所周知的 PM6:IT-4F 系统中也观察到类似的双功能 BF7 效应,这表明添加 BF7 以同时改善 PCE 和热稳定性可能通常扩展到具有二氟苯基端基小分子受体的 OSC。

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