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Fluoro-Modulated Molecular Geometry in Diketopyrrolopyrrole-Based Low-Bandgap Copolymers for Tuning the Photovoltaic Performance

机译:基于二酮吡咯并吡咯的低带隙共聚物中的氟调节分子几何结构,用于调节光伏性能

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摘要

Fluorination of conjugated polymers is an effective strategy to tune the energy levels for obtaining high power conversion efficiency (PCE) in organic solar cells. In this work, we have developed fluoro-modulated molecular geometries in diketopyrrolopyrrole based low-bandgap copolymers. In these polymers, planar conformation can be locked by intramolecular non-covalent interaction (intramolecular supramolecular interaction) between the sulfur atoms and the introduced F atoms (F···S interaction). By varying the fluorinated moieties, such a planarity can be disturbed and the molecular geometry is tuned. As a result, the polymer' properties can be modulated, including the ultraviolet-visible absorption spectrum to become broaden, charge mobility to be enhanced, open-circuit voltage (Voc) and short-circuited current (Jsc) to be elevated, and thus photovoltaic performance to be improved. The photovoltaic device based on PCFB, one of the fluorinated terpolymers, exhibited a high PCE near 8.5% with simultaneously enhanced Voc and Jsc relative to the non-fluorinated one (PCB).
机译:共轭聚合物的氟化是调节能级以获得有机太阳能电池中高功率转换效率(PCE)的有效策略。在这项工作中,我们已经在基于二酮吡咯并吡咯的低带隙共聚物中开发了氟调节的分子几何结构。在这些聚合物中,平面构象可以通过硫原子和引入的F原子之间的分子内非共价相互作用(分子内超分子相互作用)而被锁定。通过改变氟化部分,可以扰乱这种平面性并且可以调节分子的几何形状。结果,可以调节聚合物的性能,包括紫外可见吸收光谱变宽,电荷迁移率增强,开路电压(Voc)和短路电流(Jsc)升高,因此光伏性能有待提高。相对于非氟化化合物(PCB),基于PCFB(一种氟化三元共聚物)的光伏器件显示出8.5%的高PCE,同时具有增强的Voc和Jsc。

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