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首页> 外文期刊>ACS applied materials & interfaces >Efficient Approach for Improving the Performance of Nonhalogenated Green Solvent-Processed Polymer Solar Cells via Ternary-Blend Strategy
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Efficient Approach for Improving the Performance of Nonhalogenated Green Solvent-Processed Polymer Solar Cells via Ternary-Blend Strategy

机译:通过三元共混策略改善非卤化绿色溶剂加工高分子太阳能电池性能的有效方法

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摘要

The ternary-blend approach has the potential to enhance the power conversion efficiencies (PCEs) of polymer solar cells (PSCs) by providing complementary absorption and efficient charge generation. Unfortunately, most PSCs are processed with toxic halogenated solvents, which are harmful to human health and the environment. Herein, we report the addition of a nonfullerene electron acceptor 3,9-bis(2-methylene-(3-(1,1-dicyanomethylene)-indanone))-5,5,11,11-tetrakis(4-hexylpheny1)-dithieno [2,3-d:2',3'-d'-s-indaceno [1,2-b:5,6-b'dithiophene (ITIC) to a binary blend (poly[4,8-bis(2-(4-(2-ethylhexyloxy)3-fluoropheny1)-5-thienyl)benzo[1,2-b:4,5-b'] dithiophene-alt-1,3-bis(4-octylthien-2-y1)-5-(2-ethylhexyl)-thieno [3,4-c] pyrrole-4,6-dione] (P1):[6,6]-phenyl-C-71-butyric acid methyl ester (PC71BM), PCE = 8.07%) to produce an efficient nonhalogenated green solvent processed ternary PSC system with a high PCE of 10.11%. The estimated wetting coefficient value (0.086) for the ternary blend suggests that ITIC could be located at the P1:PC71BM interface, resulting in efficient charge generation and charge transport. In addition, the improved current density, sustained open-circuit voltage and PCE of the optimized ternary PSCs were highly correlated with their better external quantum efficiency response and flat-band potential value obtained from the Mott-Schottky analysis. In addition, the ternary PSCs also showed excellent ambient stability over 720 h. Therefore, our results demonstrate the combination of fullerene and nonfullerene acceptors in ternary blend as an efficient approach to improve the performance of eco-friendly solvent-processed PSCs with long-term stability.
机译:三元共混方法具有通过提供互补吸收和有效电荷产生来增强聚合物太阳能电池(PSC)的功率转换效率(PCE)。不幸的是,大多数PSC都是用毒性卤代溶剂加工的,这对人类健康和环境有害。在此,我们报告添加非氟伦烯电子受体3,9-双(2-亚甲基 - (3-(1,1-二氰基甲基) - 吲哚)) - 5,5,11,11-四(4-己基鼠) -dithieno [2,3-d:2',3'-d'-s-indaceno [1,2-b:5,6- b'dithiophene(Itic)到二进制混合物(poly [4,8-bis (2-(4-(2-乙基己氧基)3-氟苯酚1)-5-噻吩基)苯并[1,2-B:4,5-B']二噻吩-ATT-1,3-BIS(4- octylthien-2 -Y1)-5-(2-乙基己基) - 硫醚[3,4-C]吡咯-4,6-二酮](P1):[6,6] - 苯基-C-71-丁酸甲酯(PC71BM ),PCE = 8.07%)以生产高效的非卤化绿色溶剂加工三元PSC系统,高分为10.11%。三元共混物的估计润湿系数值(0.086)表明ITIC可以位于P1:PC71BM界面,导致有效的充电产生和电荷传输。另外,优化三元PSC的改善的电流密度,持续的开路电压和PCE与从Mott-Schottky分析中获得的更好的外部量子效率响应和平带电位值高度相关。此外,三元PSC也显示出优异的环境稳定性超过720小时。因此,我们的结果证明了三元共混物中富勒烯和非烯酮受体的组合,作为改善生态友好型溶剂加工PSC的性能的有效方法,具有长期稳定性。

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