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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Enhanced organic solar cells efficiency through electronic and electro-optic effects resulting from charge transfers in polymer hole transport blends
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Enhanced organic solar cells efficiency through electronic and electro-optic effects resulting from charge transfers in polymer hole transport blends

机译:通过聚合物空穴传输混合物中的电荷转移,通过电子和电光效应提高有机太阳能电池的效率

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摘要

We demonstrate that blending fluorinated molecules in PEDOT:PSS hole transport layers (HTL) induces charge transfers which impact on both charge extraction and photogeneration within organic photovoltaic (OPV) devices. OPVs fabricated with modified HTL and two photoactive polymer blends led systematically to power conversion efficiencies (PCE) increases, with PTB7:PC70BM blend exhibiting PCE of similar to 8.3%, i.e. similar to 15% increase compared to pristine HTL devices. A reduced device-to-device characteristics variations was also noticed when fluorinated additives were used to modify the PEDOT: PSS. Shading lights onto the effect of HTL fluorination, we show that the morphology of the polymer: PCBM blends remains surprisingly unaffected by the fluorinated HTL surface energy but that, instead, the OPVs are impacted not only by the HTL electronic properties (work function, dipole layer, open circuit voltage, charge transfer dynamic) but also by alteration of the complex refractive indices (photogeneration, short circuit current density, external quantum efficiencies, electro-optic modelling). Both mechanisms find their origin in fluorination induced charge transfers. This work points towards fluorination as a promising strategy toward combining both external quantum efficiency modulation and power conversion efficiency enhancement in OPVs. Charge transfers could also be used more broadly to tune the optical constants and electric field distribution, as well as to reduce interfacial charge recombinations within OPVs.
机译:我们证明,在PEDOT:PSS空穴传输层(HTL)中掺入氟化分子会诱导电荷转移,从而影响有机光伏(OPV)设备内的电荷提取和光生。用改性的HTL和两种光敏聚合物共混物制造的OPV系统地导致功率转换效率(PCE)增加,PTB7:PC70BM共混物显示的PCE约为8.3%,即与原始HTL器件相比增加了15%。当使用氟化添加剂对PEDOT:PSS进行改性时,还可以观察到减少的器件间特性差异。遮盖住HTL氟化作用的光,我们发现聚合物:PCBM共混物的形态仍然出乎意料地不受氟化HTL表面能的影响,相反,OPV不仅受HTL电子性质(功函数,偶极子)的影响层,开路电压,动态电荷转移),还可以通过改变复杂的折射率(光生,短路电流密度,外部量子效率,电光建模)来实现。两种机制都起源于氟化诱导的电荷转移。这项工作指出氟化是将OPV的外部量子效率调制与功率转换效率增强相结合的一种有前途的策略。电荷转移还可以更广泛地用于调节光学常数和电场分布,以及减少OPV内部的界面电荷复合。

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