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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Integrated molecular, morphological and interfacial engineering towards highly efficient and stable solution-processed small molecule solar cells
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Integrated molecular, morphological and interfacial engineering towards highly efficient and stable solution-processed small molecule solar cells

机译:整合分子,形态学和界面工程,实现高效稳定的溶液处理小分子太阳能电池

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The synthesis of a series of A-pi-D-pi- A oligomers bearing coplanar electron-donating dithieno[ 3,2-b:2',3'-d] silole (DTS) unit linked through bithiophene pi-bridges with the electron-withdrawing alkyldicyanovinyl (alkyl-DCV) groups is described. This study demonstrates a systematic investigation of structure-property relationships in this type of oligomer and shows obvious benefits of alkyl-DCV groups as compared to the commonly used DCV ones, in terms of elaboration of high performance organic solar cells (OSCs). Considerable efforts have been made to improve the power conversion efficiency (PCE) of oligomer-based OSCs by diverse strategies including fine-tuning of the oligomer properties via variation of their terminal and central alkyl chains, blend morphology control via solvent vapor annealing (SVA) treatment, and surface modification via interfacial engineering. These efforts allowed achieving PCEs of up to 6.4% for DTS(Oct)(2)-(2T- DCV- Me)(2) blended with PC70BM. Further morphological investigations demonstrated that the usage of SVA treatment indeed effectively results in increased absorption and ordering of the BHJ composite, with the only exception for the most soluble oligomer DTS(Oct)(2)-(2T- DCV-Hex)(2). Besides, a detailed study analyzed the charge transport properties and recombination loss mechanisms for these oligomers. This study not only revealed the importance of integrated alkyl chain engineering on gaining morphological control for high performance OSCs, but also exhibited a clear correlation between molecular ordering and charge carrier mobility respective to carrier dynamics. These results outline a detailed strategy towards a rather complete characterization and optimization methodology for organic photovoltaic devices, thereby paving the way for researchers to easily find the performance parameters adapted for widespread applications.
机译:一系列带有共平面电子给体双噻吩并[3,2-b:2',3'-d] silole(DTS)单元的A-pi-D-pi-A低聚物的合成,该单元通过联噻吩pi桥与描述了吸电子烷基二氰基乙烯基(烷基-DCV)。这项研究表明,对这类低聚物的结构-性质关系进行了系统研究,并显示了烷基-DCV基团与常用的DCV基团相比,在制备高性能有机太阳能电池(OSC)方面具有明显的优势。为了通过多种策略提高基于低聚物的OSC的功率转换效率(PCE),已经做出了巨大的努力,包括通过改变其末端和中心烷基链来微调低聚物的性能,通过溶剂蒸汽退火(SVA)来控制混合物形态处理和通过界面工程进行表面改性。这些努力使得与PC70BM混合的DTS(Oct)(2)-(2T- DCV-Me)(2)的PCE达到了6.4%。进一步的形态学研究表明,使用SVA处理确实有效地导致了BHJ复合材料的吸收和有序化,唯一例外是最易溶的低聚物DTS(Oct)(2)-(2T- DCV-Hex)(2) 。此外,详细的研究分析了这些低聚物的电荷输运性质和重组损失机理。这项研究不仅揭示了集成烷基链工程在获得高性能OSC的形态控制方面的重要性,而且还展示了分子序和电荷载流子迁移率与载流子动力学之间的明确关联。这些结果概述了针对有机光伏器件的相当完整的表征和优化方法的详细策略,从而为研究人员轻松找到适合广泛应用的性能参数铺平了道路。

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