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Reducing the efficiency-stability-cost gap of organic photovoltaics with highly efficient and stable small molecule acceptor ternary solar cells.

机译:采用高效稳定的小分子受体三元太阳能电池,降低有机光伏发电的效率 - 稳定性 - 成本差距。

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摘要

Technological deployment of organic photovoltaic modules requires improvements in device light-conversion efficiency and stability while keeping material costs low. Here we demonstrate highly efficient and stable solar cells using a ternary approach, wherein two non-fullerene acceptors are combined with both a scalable and affordable donor polymer, poly(3-hexylthiophene) (P3HT), and a high-efficiency, low-bandgap polymer in a single-layer bulk-heterojunction device. The addition of a strongly absorbing small molecule acceptor into a P3HT-based non-fullerene blend increases the device efficiency up to 7.7 ± 0.1% without any solvent additives. The improvement is assigned to changes in microstructure that reduce charge recombination and increase the photovoltage, and to improved light harvesting across the visible region. The stability of P3HT-based devices in ambient conditions is also significantly improved relative to polymer:fullerene devices. Combined with a low-bandgap donor polymer (PBDTTT-EFT, also known as PCE10), the two mixed acceptors also lead to solar cells with 11.0 ± 0.4% efficiency and a high open-circuit voltage of 1.03 ± 0.01 V.
机译:有机光伏模块的技术部署需要提高器件的光转换效率和稳定性,同时保持较低的材料成本。在这里,我们演示了使用三元方法的高效且稳定的太阳能电池,其中两个非富勒烯受体与可扩展且价格合理的供体聚合物,聚(3-己基噻吩)(P3HT)和高效,低带隙相结合单层本体异质结器件中的聚合物。在不使用任何溶剂添加剂的情况下,将强吸收小分子受体添加到基于P3HT的非富勒烯混合物中,可使器件效率提高至7.7±0.1%。改善归因于微观结构的变化,这些变化减少了电荷的复合并增加了光电压,并改善了可见光区域的光收集。相对于聚合物:富勒烯装置,基于P3HT的装置在环境条件下的稳定性也得到了显着提高。结合低带隙供体聚合物(PBDTTT-EFT,也称为PCE10),这两种混合受体还可以产生效率为11.0±0.4%,开路电压为1.03±0.01 V的太阳能电池。

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