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Highly Efficient and Stable Inverted Polymer Solar Cells Integrated with a Cross-Linked Fullerene Material as an Interlayer

机译:高效,稳定的倒装聚合物太阳能电池,以交联的富勒烯材料为中间层

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摘要

A novel PCBM-based n-type material, [6,6]-phenyl-C_(61)-butyric styryl dendron ester (PCBSD), functionalized with a dendron containing two styryl groups as thermal cross-linkers, has been rationally designed and easily synthesized. In situ cross-linking of PCBSD was carried out by heating at a low temperature of 160 ℃ for 30 min to generate a robust, adhesive, and solvent-resistant thin film. This cross-linked network enables a sequential active layer to be successfully deposited on top of this interlayer to overcome the problem of interfacial erosion and realize a multilayer inverted device by all-solution processing. An inverted solar cell device based on an ITO/ZnO/C-PCBSD/P3HT:PCBM/PEDOT:PSS/Ag configuration not only achieves enhanced device characteristics, with an impressive PCE of 4.4%, but also exhibits an exceptional device lifetime without encapsulation; it greatly outperforms a reference device (PCE = 3.5%) based on an ITO/ZnO/P3HT:PCBM/PEDOT:PSS/Ag configuration without the interlayer. This C-PCBSD interlayer exerts multiple positive effects on both P3HT/C-PCBSD and PCBM/C-PCBSD localized heterojunctions at the interface of the active layer, including improved exciton dissociation efficiency, reduced charge recombination, decreased interface contact resistance, and induction of vertical phase separation to reduce the bulk resistance of the active layer as well as passivation of the local shunts at the ZnO interface. Moreover, this promising approach can be applied to another inverted solar cell, ITO/ZnO/C-PCBSD/PCPDTBT:PC_(71)BM/PEDOT:PSS/Ag, using PCPDTBT as the p-type low-band-gap conjugated polymer to achieve an improved PCE of 3.4%. Incorporation of this cross-linked C_(60) interlayer could become a standard procedure in the fabrication of highly efficient and stable multilayer inverted solar cells.
机译:合理设计并设计了一种新颖的基于PCBM的n型材料[6,6]-苯基-C_(61)-丁苯乙烯基树枝状酯(PCBSD),该树枝状化合物含有两个苯乙烯基作为热交联剂。容易合成。通过在160℃的低温下加热30分钟进行PCBSD的原位交联,以生成坚固,粘合和耐溶剂的薄膜。这种交联的网络使顺序的有源层能够成功地沉积在该中间层的顶部,从而克服了界面腐蚀的问题,并通过全溶液处理实现了多层倒置器件。基于ITO / ZnO / C-PCBSD / P3HT:PCBM / PEDOT:PSS / Ag配置的倒装太阳能电池器件不仅实现了增强的器件特性(令人印象深刻的4.4%的PCE),而且还具有出色的器件寿命,无需封装;它在没有中间层的情况下,大大优于基于ITO / ZnO / P3HT:PCBM / PEDOT:PSS / Ag配置的参考器件(PCE = 3.5%)。此C-PCBSD中间层对有源层界面处的P3HT / C-PCBSD和PCBM / C-PCBSD局部异质结均具有多种正效应,包括提高的激子离解效率,降低的电荷复合,降低的界面接触电阻以及对C3的感应。垂直相分离可减小有源层的体电阻以及ZnO界面处的局部分流器的钝化。而且,这种有前途的方法可以应用于另一种倒置太阳能电池,ITO / ZnO / C-PCBSD / PCPDTBT:PC_(71)BM / PEDOT:PSS / Ag,使用PCPDTBT作为p型低带隙共轭聚合物实现3.4%的PCE改善。这种交联的C_(60)中间层的结合可能成为制造高效,稳定的多层倒置太阳能电池中的标准程序。

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  • 来源
    《Journal of the American Chemical Society》 |2010年第13期|p.4887-4893|共7页
  • 作者单位

    Department of Applied Chemistry, National Chiao Tung University, 1001 Ta Hsueh Road Hsin-Chu, 30010 Taiwan;

    Department of Applied Chemistry, National Chiao Tung University, 1001 Ta Hsueh Road Hsin-Chu, 30010 Taiwan;

    Department of Applied Chemistry, National Chiao Tung University, 1001 Ta Hsueh Road Hsin-Chu, 30010 Taiwan;

    Department of Applied Chemistry, National Chiao Tung University, 1001 Ta Hsueh Road Hsin-Chu, 30010 Taiwan;

    Department of Applied Chemistry, National Chiao Tung University, 1001 Ta Hsueh Road Hsin-Chu, 30010 Taiwan;

    Department of Applied Chemistry, National Chiao Tung University, 1001 Ta Hsueh Road Hsin-Chu, 30010 Taiwan;

    Department of Applied Chemistry, National Chiao Tung University, 1001 Ta Hsueh Road Hsin-Chu, 30010 Taiwan;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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