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Exciton and Charge Carrier Dynamics in Highly Crystalline PTQ10:IDIC Organic Solar Cells

机译:Exciton和充电载体动力学在高度结晶PTQ10:IDIC有机太阳能电池

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摘要

Herein the morphology and exciton/charge carrier dynamics in bulk heterojunctions (BHJs) of the donor polymer PTQ10 and molecular acceptor IDIC are investigated. PTQ10:IDIC BHJs are shown to be particularly promising for low cost organic solar cells (OSCs). It is found that both PTQ10 and IDIC show remarkably high crystallinity in optimized BHJs, with GIWAXS data indicating pi-pi stacking coherence lengths of up to 8 nm. Exciton-exciton annihilation studies indicate long exciton diffusion lengths for both neat materials (19 nm for PTQ10 and 9.5 nm for IDIC), enabling efficient exciton separation with half lives of 1 and 3 ps, despite the high degree of phase segregation in this blend. Transient absorption data indicate exciton separation leads to the formation of two spectrally distinct species, assigned to interfacial charge transfer (CT) states and separated charges. CT state decay is correlated with the appearance of additional separate charges, indicating relatively efficient CT state dissociation, attributed to the high crystallinity of this blend. The results emphasize the potential for high material crystallinity to enhance charge separation and collection in OSCs, but also that long exciton diffusion lengths are likely to be essential for efficient exciton separation in such high crystallinity devices.
机译:本文研究了供体聚合物PTQ10和分子受体IDIC的本体杂疾病(BHJ)中的形态和激子/电荷载体动力学。 PTQ10:IDIC BHJS被证明对低成本有机太阳能电池(OSC)特别有前途。发现PTQ10和IDIC两者都在优化的BHJ中显示出显着的高结晶度,GIWAXS数据表示PI-PI堆叠相干长度高达8nm。 Exciton-Exciton湮灭研究表明,对于整个纯材料(用于PTQ10和IDIC的9.5nm的19nm)表示长的激子扩散长度,尽管该混合物中的相位偏析高度的相位偏析,但能够高效的激子分离。瞬态吸收数据表示激子分离导致形成两种光谱不同物种,分配给界面电荷转移(CT)状态和分离的电荷。 CT状态衰减与额外的单独电荷的外观相关,表明归因于该混合物的高结晶度的CT状态解离。结果强调了高材料结晶度以增强OSC的电荷分离和收集的可能性,但是,长的激子扩散长度可能对于这种高结晶度装置中有效的激子分离可能是必不可少的。

著录项

  • 来源
    《Advanced energy materials 》 |2020年第38期| 2001149.1-2001149.11| 共11页
  • 作者单位

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England;

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England;

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England;

    Pohang Univ Sci & Technol POSTECH Pohang Accelerator Lab PAL Pohang 37673 Gyeongbuk South Korea;

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England;

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England;

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England|Univ Cambridge Cavendish Lab JJ Thomson Ave Cambridge CB3 0HE England;

    Swansea Univ Coll Engn SPECIFIC IKC Bay Campus Fabian Way Swansea SA1 8EN W Glam Wales;

    Swansea Univ Coll Engn SPECIFIC IKC Bay Campus Fabian Way Swansea SA1 8EN W Glam Wales;

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England;

    King Abdullah Univ Sci & Technol KAUST KAUST Solar Ctr KSC Thuwal 239556900 Saudi Arabia|Univ Oxford Dept Chem Chem Res Lab Oxford OX1 3TA England;

    Imperial Coll London Dept Chem London W12 0BZ England|Imperial Coll London Ctr Plast Elect London W12 0BZ England|Swansea Univ Coll Engn SPECIFIC IKC Bay Campus Fabian Way Swansea SA1 8EN W Glam Wales;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    charge separation; nonfullerene acceptors; organic solar cells; phase separation; recombination;

    机译:电荷分离;非对策;有机太阳能电池;相分离;重组;

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