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Influence of the Active Layer Structure on the Photovoltaic Performance of Water-Soluble Polythiophene-Based Solar Cells

机译:有源层结构对水溶性聚噻吩基太阳能电池光伏性能的影响

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摘要

A new side-chain C60-fullerene functionalized thiophene copolymer bearing tributylphosphine-substituted hexylic lateral groups was successfully synthesized by means of a fast and effective post-polymerization reaction on a regioregular ω-alkylbrominated polymeric precursor. The growth of the polymeric intermediate was followed by NMR spectrometry in order to determine the most convenient reaction time. The obtained copolymer was soluble in water and polar solvents and was used as a photoactive layer in single-material organic photovoltaic (OPV) solar cells. The copolymer photovoltaic efficiency was compared with that of an OPV cell containing a water-soluble polythiophenic homopolymer, functionalized with the same tributylphosphine-substituted hexylic side chains, in a blend with a water-soluble C60-fullerene derivative. The use of a water-soluble double-cable copolymer made it possible to enhance the control on the nanomorphology of the active blend, thus reducing phase-segregation phenomena, as well as the macroscale separation between the electron acceptor and donor components. Indeed, the power conversion efficiency of OPV cells based on a single material was higher than that obtained with the classical architecture, involving the presence of two distinct ED and EA materials (PCE: 3.11% vs. 2.29%, respectively). Moreover, the synthetic procedure adopted to obtain single material-based cells is more straightforward and easier than that used for the preparation of the homopolymer-based BHJ solar cell, thus making it possible to completely avoid the long synthetic pathway which is required to prepare water-soluble fullerene derivatives.
机译:通过在再生ω-烷基溴化聚合物前体上的快速和有效的聚合反应,成功地合成了一种新的侧链C60-富勒烯官能化噻吩共聚物致杂膦膦取代的硫脲横向基团。聚合物中间体的生长之后是NMR光谱法,以确定最方便的反应时间。所得共聚物可溶于水和极性溶剂,并用作单材料有机光伏(OPV)太阳能电池中的光活性层。将共聚的光伏效率与含有水溶性多粒细胞均聚物的OPV细胞进行比较,以与水溶性C60-富勒烯衍生物的共混物中的具有相同的三氢膦 - 取代的硫侧链官能化。使用水溶性双电缆共聚物使得可以增强对活性混合物的纳米形态的控制,从而减少相偏析现象,以及电子受体和供体组分之间的宏观分离。实际上,基于单个材料的OPV细胞的功率转换效率高于经典结构获得的电池,涉及两个不同的ED和EA材料(PCE:3.11%与2.29%)的存在。此外,采用的合成程序获得单一材料基细胞更加直观,比用于制备基于均聚物的BHJ太阳能电池的更容易,从而使得可以完全避免制备水所需的长合成途径 - 溶解富勒烯衍生物。

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