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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Mechanically robust and high-performance ternary solar cells combining the merits of all-polymer and fullerene blends
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Mechanically robust and high-performance ternary solar cells combining the merits of all-polymer and fullerene blends

机译:机械稳健和高性能的三元太阳能电池,组合了全聚合物和富勒烯共混物的优点

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In this study, we demonstrate that the introduction of small amounts of phenyl-C-71-butyric acid methyl ester (PC71BM) into all-polymer solar cells (all-PSCs) increases the photovoltaic performance without compromising mechanical properties. Ternary blend polymer solar cells (ternary-PSCs) consisting of a polymer donor (PTB7-Th) and an acceptor mixture with different weight ratios of a polymeric acceptor (P(NDI2HD-T2)) and PC71BM demonstrate the effects of PC71BM loading on the power conversion efficiency (PCE) and mechanical properties. A significant enhancement in the PCEs of ternary-PSCs, from 6.32% to 7.33%, is observed when PC71BM is added into the active layer as up to 30 wt% of the acceptor mixture. Importantly, the excellent mechanical properties (i.e., crack onset strain = 11.6%, toughness 1/4 2237 J m(-3)) of the blend films are well preserved at PC71BM loadings at or below 30 wt%. In contrast, both the PCE and the mechanical performance of the ternary-PSCs significantly decrease at higher PC71BM loadings ( 50 wt%). Detailed morphological analysis via grazing incidence X-ray scattering measurements reveals that PC71BM molecules are well-dispersed in the amorphous portion of the active layer at PC71BM loadings up to 30 wt%. Therefore, both the mechanical and photovoltaic performances of the ternary-PSCs correlate closely with their morphological behavior, particularly in terms of the mixing behavior of PC71BM with polymers. The well-dispersed PC71BM molecules in the amorphous polymer domains facilitate efficient exciton dissociation, whereas the formation of PC71BM aggregates above a critical concentration causes severe mechanical degradation of the ternary-PSCs due to the presence of weak interfaces between the brittle PC71BM and polymer domains. Therefore, the ternary blends with optimal content of polymer/fullerene acceptors represent important candidates for flexible and wearable solar cells that require both high mechanical and photovoltaic performances.
机译:在该研究中,我们证明将少量苯基-C-71-丁酸甲酯(PC71BM)引入全聚合物太阳能电池(ALL-PSCS)增加光伏性能而不会损害机械性能。由聚合物供体(PTB7-)和具有不同重量比的聚合物受体(P(NDI2HD-T2))和PC71BM的受体混合物组成的三元共混聚合物太阳能电池(Ternary-PSC)和PC71BM的效果展示了PC71BM负荷的影响功率转换效率(PCE)和机械性能。当PC71BM加入到最高30wt%的受体混合物中时,将观察到三元-PSC的PSC的PSC的PSC的PSC中的PSC的显着增强。重要的是,共混膜的优异机械性能(即裂纹发作菌株= 11.6%,韧性1/42237JM(-3))在PC71BM负载下保留在30wt%的PC71BM载荷中。相反,PCE和三元PSC的机械性能都在较高的PC71BM负载量下显着降低(& 50wt%)。通过放牧发生率X射线散射测量的详细形态学分析表明,PC71BM分子在PC71BM负载下的PC71BM负载下井下分散在活性层的无定形部分中,其高达30wt%。因此,三元PSC的机械和光伏性能均与其形态行为紧密相关,特别是在PC71BM与聚合物的混合行为方面。非晶态聚合物结构域中的良好分散的PC71BM分子促进了有效的激子解离,而基于临界浓度的PC71BM聚集体的形成导致稀有脆性PC71BM和聚合物结构域之间存在弱界面的严重机械劣化。因此,具有最佳含量的聚合物/富勒烯受体的三元共混物代表了需要高机械和光伏性能的柔性和可穿戴太阳能电池的重要候选者。

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