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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >High-efficiency organic solar cells based on a halide salt and polyfluorene polymer with a high alignment-level of the cathode selective contact
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High-efficiency organic solar cells based on a halide salt and polyfluorene polymer with a high alignment-level of the cathode selective contact

机译:高效有机太阳能电池基于卤化盐和聚芴聚合物,具有高对准水平的阴极选择性接触

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摘要

Advances in organic photovoltaic technology for improving the power conversion efficiency (PCE) towards the theoretical maximum require efficient light-absorbing polymers, a high alignment-level of selective contacts, and an easy manufacturing process with low cost to reach them. The halide salts constitute a highly promising class of materials that can produce better selective contacts in solar cells for improving the PCE. In this article, we demonstrate and report the use of a haloid salt in organic solar cells utilized as an interlayer. The haloid salt is deposited on top or below of polyfluorene polymer (PFN) layer and after it is placed on a transparent conductive oxide (TCO). Thermal evaporation of LiF layers is carried out to deposit ultrathin films of 0.5 nm to 0.8 nm thickness. As a photoactive layer we use the low-bandgap PBDTTT-EFT:PC70BM bulk-heterojunction. Among the different architectures analyzed we obtained a PCE of 11.00%, with an outstanding fill factor of FF = 73.5%, which is among the best reported for solar cells. This new stacking of a halide salt with polyfluorene materials could find use in fully exploiting the potential of various halide systems, and also opens up new opportunities to improve OSCs with a view to achieving record efficiencies.
机译:有机光伏技术的研究进展,用于提高电力转换效率(PCE)朝向理论最大值,需要有效的光吸收聚合物,具有低成本的高比定水平,以及易于到达它们的易制造过程。卤化物盐构成高度有前途的材料类,可以在太阳能电池中产生更好的选择性接触以改善PCE。在本文中,我们证明并报告了用作中间层的有机太阳能电池中的卤代含量。卤代盐沉积在聚芴聚合物(PFN)层的顶部或下方沉积在透明导电氧化物(TCO)上之后。进行LiF层的热蒸发,以将超薄薄膜沉积0.5nm至0.8nm厚的厚度。作为光活性层,我们使用低带隙PBDTTT-EFT:PC70BM Bulk-Hetero结功能。在分析的不同架构中,我们获得了11.00%的PCE,优秀填充因子为FF = 73.5%,这是太阳能电池的最佳报道。这种新的卤化盐与多氟材料的堆叠可以在充分利用各种卤化物系统的潜力方面找到使用,并开辟了改善OSC的新机会,以实现历史效率。

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