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Effect of Carbon Chain Length in the Substituent of PCBM-like Molecules on Their Photovoltaic Properties

机译:类PCBM分子的碳链长度对其光伏性能的影响

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摘要

A series of [6,6]-phenyl-C_(61)-butyric acid methyl ester (PCBM)-like fullerene derivatives with the butyl chain in PCBM changing from 3 to 7 carbon atoms, respectively (F1-F5), are designed and synthesized to investigate the relationship between photovoltaic properties and the molecular structure of fullerene derivative acceptors. F2 with a butyl chain is PCBM itself for comparison. Electrochemical, optical, electron mobility, morphology, and photovoltaic properties of the molecules are characterized, and the effect of the alkyl chain length on their properties is investigated. Although there is little difference in the absorption spectra and LUMO energy levels of F1-F5, an interesting effect of the alkyl chain length on the photovoltaic properties is observed. For the polymer solar cells (PSCs) based on P3HT as donor and Fl-F5, respectively, as acceptors, the photovoltaic behavior of the P3HT/F1 and P3HT/F4 systems are similar to or a little better than that of the P3HT/PCBM device with power conversion efficiencies (PCEs) above 3.5%, while the performances of P3HT/F3 and P3HT/F5-based solar cells are poorer, with PCE values below 3.0%. The phenomenon is explained by the effect of the alkyl chain length on the absorption spectra, fluorescence quenching degree, electron mobility, and morphology of the P3HT/F1-F5 (1:1, w/w) blend films.
机译:设计了一系列[6,6]-苯基-C_(61)-丁酸甲酯(PCBM)样的富勒烯衍生物,PCBM中的丁基链分别从3个碳原子变化到7个碳原子(F1-F5)并合成以研究光伏性质与富勒烯衍生物受体的分子结构之间的关系。用于比较的带有丁基链的F2是PCBM本身。表征了分子的电化学,光学,电子迁移率,形态和光伏性质,并研究了烷基链长对其性质的影响。尽管F1-F5的吸收光谱和LUMO能级几乎没有差异,但是可以观察到烷基链长对光伏性质的有趣影响。对于分别基于P3HT作为供体和Fl-F5作为受体的聚合物太阳能电池(PSC),P3HT / F1和P3HT / F4系统的光伏行为与P3HT / PCBM相似或略好于P3HT / PCBM功率转换效率(PCE)高于3.5%的设备,而P3HT / F3和P3HT / F5基太阳能电池的性能较差,PCE值低于3.0%。通过烷基链长对P3HT / F1-F5(1:1,w / w)共混膜的吸收光谱,荧光猝灭度,电子迁移率和形态的影响来解释这种现象。

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  • 来源
    《Advanced Functional Materials》 |2010年第9期|P.1480-1487|共8页
  • 作者单位

    Graduate University of Chinese Academy of Sciences Beijing 100039 (P. R. China);

    rnBeijing National Laboratory for Molecular Sciences CAS Key Laboratory of Organic Solids Institute of Chemistry, Chinese Academy of Sciences Beijing 100190 (P. R. China);

    rnSolarmer Energy Inc.El Monte, California 91731 (USA);

    rnSolarmer Energy Inc.El Monte, California 91731 (USA);

    rnBeijing National Laboratory for Molecular Sciences CAS Key Laboratory of Organic Solids Institute of Chemistry, Chinese Academy of Sciences Beijing 100190 (P. R. China);

    rnBeijing National Laboratory for Molecular Sciences CAS Key Laboratory of Organic Solids Institute of Chemistry, Chinese Academy of Sciences Beijing 100190 (P. R. China);

    rnDepartment of Materials Science and Engineering & California Nanosystems Institute University of California at Los Angeles Los Angeles, California 90095 (USA);

    rnBeijing National Laboratory for Molecular Sciences CAS Key Laboratory of Organic Solids Institute of Chemistry, Chinese Academy of Sciences Beijing 100190 (P. R. China) Graduate University of Chinese Academy of Sciences Beijing 100039 (P. R. China);

    rnDepartment of Materials Science and Engineering & California Nanosystems Institute University of California at Los Angeles Los Angeles, California 90095 (USA);

    rnDepartment of Materials Science and Engineering & California Nanosystems Institute University of California at Los Angeles Los Angeles, California 90095 (USA);

    rnBeijing National Laboratory for Molecular Sciences CAS Key Laboratory of Organic Solids Institute of Chemistry, Chinese Academy of Sciences Beijing 100190 (P. R. China);

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