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Influence of Surface Energy on Organic Alloy Formation in Ternary Blend Solar Cells Based on Two Donor Polymers

机译:基于两种施主聚合物的表面能对三元混合太阳能电池有机合金形成的影响

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The compositional dependence of the open-circuit voltage (V-oc) in ternary blend bulk heterojunction (BHJ) solar cells is correlated with the miscibility of polymers, which may be influenced by a number of attributes, including crystallinity, the random copolymer effect, or surface energy. Four ternary blend systems featuring poly(3-hexylthiophene-co-3-(2-ethylhexyl)thiophene) (P3HT(75-co)-EHT25), poly(3-hexylthiophene-co-(hexyl-3-carboxylate)), herein referred to as poly(3-hexylthiophene-co-3-hexylesterthiophene) (P3HT(50)-co-3HET(50)), poly(3-hexylthiophene-thiophene-diketopyrrolopyrrole) (P3HTT-DPP-10%), and an analog of P3HTT-DPP-10% with 40% of 3-hexylthiophene exchanged for 2-(2-methoxyethoxy)ethylthiophen-2-yl (3MEO-T) (featuring an electronically decoupled oligoether side-chain), referred to as P3HTTDPP-MEO40%, are explored in this work. All four polymers are semicrystalline and rich in rr-P3HT content and perform well in binary devices with PC61BM. Except for P3HTTDPP-MEO40%, all polymers exhibit similar surface energies (similar to 21-22 mN/m). P3HTTDPP-MEO40% exhibits an elevated surface energy of around 26 mN/m. As a result, despite the similar optoelectronic properties and binary solar cell performance of P3HTTDPP-MEO40% compared to P3HTT-DPP-10%, the former exhibits a pinned Voc in two different sets of ternary blend devices. This is a stark contrast to previous rr-P3HT-based systems and demonstrates that surface energy, and its influence on miscibility, plays a critical role in the formation of organic alloys and can supersede the influence of crystallinity, the random copolymer effect, similar backbone structures, and HOMO/LUMO considerations. Therefore, we confirm surface energy compatibility as a figure-of-merit for predicting the compositional dependence of the V-oc in ternary blend solar cells and highlight the importance of polymer miscibility in organic alloy formation.
机译:三元共混本体异质结(BHJ)太阳能电池中开路电压(V-oc)的成分依赖性与聚合物的混溶性相关,这可能受多种属性的影响,包括结晶度,无规共聚物效应,或表面能。具有聚(3-己基噻吩-co-3-(2-乙基己基)噻吩)(P3HT(75-co)-EHT25),聚(3-己基噻吩-co-(己基-3-羧酸酯))的四元共混体系,在本文中称为聚(3-己基噻吩-co-3-己基酯噻吩)(P3HT(50)-co-3HET(50)),聚(3-己基噻吩-噻吩-二酮吡咯并吡咯)(P3HTT-DPP-10%)和P3HTT-DPP-10%的类似物与40%的3-己基噻吩交换成2-(2-甲氧基乙氧基)乙基噻吩-2-基(3MEO-T)(具有电子去耦的寡醚侧链),称为P3HTTDPP -MEO40%,是在这项工作中探索的。所有这四种聚合物均为半结晶,并且富含rr-P3HT,在带有PC61BM的二元器件中表现良好。除P3HTTDPP-MEO40%外,所有聚合物均表现出相似的表面能(相似于21-22 mN / m)。 P3HTTDPP-MEO40%的表面能量升高约26 mN / m。结果,尽管与P3HTT-DPP-10%相比,P3HTTDPP-MEO40%具有相似的光电性能和二元太阳能电池性能,但前者在两组不同的三元共混器件中显示出固定的Voc。这与以前的基于rr-P3HT的系统形成鲜明对比,表明表面能及其对溶混性的影响在有机合金的形成中起着至关重要的作用,并且可以取代结晶度,无规共聚物效应,类似骨架的影响结构以及HOMO / LUMO注意事项。因此,我们确认表面能相容性是预测三元混合太阳能电池中V-oc的成分依赖性的品质因数,并强调了聚合物在有机合金形成中的相容性的重要性。

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