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首页> 外文期刊>Energy & environmental science >A novel quasi-solid state dye-sensitized solar cell fabricated using a multifunctional network polymer membrane electrolyte
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A novel quasi-solid state dye-sensitized solar cell fabricated using a multifunctional network polymer membrane electrolyte

机译:利用多功能网络聚合物膜电解质制备的新型准固态染料敏化太阳能电池

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摘要

A series of liquid junction dye-sensitized solar cells (DSCs) was fabricated based on polymer membrane-encapsulated dye-sensitized TiO_2 nanoparticles, prepared using a surface-induced cross-linking polymerization reaction, to investigate the dependence of the solar cell performance on the encapsulating membrane layer thickness. The ion conductivity decreased as the membrane thickness increased; however, the long term-stability of the devices improved with increasing membrane thickness. Nanoparticles encapsulated in a thick membrane (ca. 37 nm), obtained using a 90 min polymerization time, exhibited excellent pore filling among TiO_2 particles. This nanoparticle layer was used to fabricate a thin-layered, quasi-solid state DSC. The thick membrane prevented short-circuit paths from forming between the counter and the TiO_2 electrode, thereby reducing the minimum necessary electrode separation distance. The quasi-solid state DSC yielded a high power conversion efficiency (7.6 → 8.1%) and excellent stability during heating at 65℃ over 30 days. These performance characteristics were superior to those obtained from a conventional DSC (7.5 → 3.5%) prepared using a TiO_2 active layer with the same thickness. The reduced electrode separation distance shortened the charge transport pathways, which compensated for the reduced ion conductivity in the polymer gel electrolyte. Excellent pore filling on the TiO_2 particles minimized the exposure of the dye to the liquid and reduced dye detachment.
机译:以表面诱导的交联聚合反应为基础,以聚合物膜包裹的染料敏化的TiO_2纳米粒子为基础,制备了一系列液结染料敏化太阳能电池(DSC),以研究太阳能电池性能对材料的依赖性。包封膜层厚度。离子电导率随膜厚度的增加而降低;然而,随着膜厚度的增加,器件的长期稳定性得到改善。使用90分钟的聚合时间获得的封装在厚膜(约37 nm)中的纳米颗粒在TiO_2颗粒之间表现出优异的孔填充性。该纳米颗粒层用于制造薄层的准固态DSC。厚膜防止了在对电极和TiO_2电极之间形成短路路径,从而减小了最小的必要电极分离距离。准固态DSC在65℃加热30天期间具有很高的功率转换效率(7.6→8.1%)和极好的稳定性。这些性能特征优于使用相同厚度的TiO_2活性层制备的常规DSC(7.5→3.5%)。减小的电极间隔距离缩短了电荷传输路径,这补偿了聚合物凝胶电解质中减小的离子电导率。 TiO_2颗粒上的优异孔填充可最大程度地减少染料在液体中的暴露并减少染料的脱落。

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  • 来源
    《Energy & environmental science》 |2013年第5期|1559-1564|共6页
  • 作者单位

    Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Kyoungbuk, Korea;

    Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Kyoungbuk, Korea;

    Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Kyoungbuk, Korea;

    Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Kyoungbuk, Korea;

    Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Kyoungbuk, Korea;

    Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Kyoungbuk, Korea;

    POSCO Global R&D Center, 180-1, Songdo-dong, Yeonsu-gu, Incheon, Korea;

    Pohang University of Science and Technology, San 31, Nam-gu, Pohang, Kyoungbuk, Korea;

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