首页> 外文期刊>RSC Advances >Effects of including electron-withdrawing atoms on the physical and photovoltaic properties of indacenodithieno[3,2-b]thiophene-based donor–acceptor polymers: towards an acceptor design for efficient polymer solar cells
【24h】

Effects of including electron-withdrawing atoms on the physical and photovoltaic properties of indacenodithieno[3,2-b]thiophene-based donor–acceptor polymers: towards an acceptor design for efficient polymer solar cells

机译:吸电子原子对基于茚并二噻吩并[3,2- b ]噻吩基供体-受体聚合物的物理和光电性质的影响:朝着高效聚合物太阳能电池的受体设计

获取原文
           

摘要

Three new D–A polymers PIDTT-DTBO, PIDTT-DTBT and PIDTT-DTFBT, using indacenodithieno[3,2-b]thiophene (IDTT) as the electron-rich unit and benzoxadiazole (BO), benzodiathiazole (BT) or difluorobenzothiadiazole (FBT) as the electron-deficient unit, were synthesized via a Pd-catalyzed Stille polymerization. The included electron-withdrawing atoms of the acceptor portion were varied between O, S, and F for tailoring the optical and electrochemical properties and the geometry of structures. Their effects on the film topography, photovoltaic and hole-transporting properties of the polymers were thoroughly investigated via a range of techniques. As expected, the stronger electron-withdrawing BO unit affords red-shifted absorption, low-lying HOMO and LUMO levels for the polymer PIDTT-DTBO. However, it depicts lower hole mobility and a less efficient charge collection in the active layer compared to the polymer PIDTT-DTBT. In addition, degradation of the solubility is observed in the fluorinated polymer PIDTT-DTFBT. As a result, a BHJ PSC (ITO/PEDOT:PSS/polymer:PC71BM/interlayer/Al) fabricated with PIDTT-DTBT attains the best power conversion efficiency (PCE) of 4.91%. These results thus demonstrate the potential effects of electronegative atoms on IDTT-based polymers and the structure–function correlations of such electron-donor materials for efficient PSCs.
机译:三种新的D–A聚合物PIDTT-DTBO,PIDTT-DTBT和PIDTT-DTFBT,使用茚并二噻吩并[3,2- b ]噻吩(IDTT)作为富电子单元和苯并恶二唑(BO),苯并二噻唑(BT)或二氟苯并噻二唑(FBT)作为电子缺陷单元,是通过Pd催化Stille聚合反应合成的。受体部分中包括的吸电子原子在O,S和F之间变化,以调整光学和电化学性质以及结构的几何形状。通过一系列技术深入研究了它们对聚合物的薄膜形貌,光电和空穴传输性能的影响。如预期的那样,较强的吸电子BO单元为聚合物PIDTT-DTBO提供了红移吸收,低位HOMO和LUMO含量。但是,与聚合物PIDTT-DTBT相比,它在活性层中显示出较低的空穴迁移率和较低的电荷收集效率。另外,在氟化聚合物PIDTT-DTFBT中观察到溶解度降低。结果,用PIDTT-DTBT制成的BHJ PSC(ITO / PEDOT:PSS /聚合物:PC 71 BM /中间层/ Al)可获得最佳的功率转换效率( PCE)为4.91%。因此,这些结果证明了负电性原子对基于IDTT的聚合物的潜在影响,以及这种电子给体材料对于有效PSC的结构-功能相关性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号