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首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Enhancing the Performance of Organic Solar Cells by Hierarchically Supramolecular Self-Assembly of Fused-Ring Electron Acceptors
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Enhancing the Performance of Organic Solar Cells by Hierarchically Supramolecular Self-Assembly of Fused-Ring Electron Acceptors

机译:通过融合环电子受体的分层上分子自组装增强有机太阳能电池的性能

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摘要

Three novel non-fullerene small molecular acceptors ITOIC, ITOIC-F, and ITOIC-2F were designed and synthesized with easy chemistry. The concept of supra-molecular chemistry was successfully used in the molecular design, which includes noncovalently conformational locking (via intrasupramolecular interaction) to enhance the planarity of backbone and electrostatic interaction (intersupramolecular interaction) to enhance the pi-pi stacking of terminal groups. Fluorination can further strengthen the intersupramolecular electrostatic interaction of terminal groups. As expected, the designed acceptors exhibited excellent device performance when blended with polymer donor PBDB-T. In comparison with the parent acceptor molecule DC-IDT2T reported in the literature with a power conversion efficiency (PCE) of 3.93%, ITOIC with a planar structure exhibited a PCE of 8.87% and ITOIC-2F with a planar structure and enhanced electrostatic interaction showed a quite impressive PCE of 12.17%. Our result demonstrates the importance of comprehensive design in the development of high-performance non-fullerene small molecular acceptors.
机译:设计和合成了三种新型非富勒烯小分子受体ITOIC,ITOIC-F和ITIOG-2F,易化学。在分子设计中成功地使用了Supra分子化学的概念,其包括非共价锁定(通过肺部分子相互作用),以增强主链和静电相互作用(三分子相互作用)的平面,以增强终端组的PI-PI堆叠。氟化可以进一步强化末端基团的三分子静电相互作用。正如预期的那样,当与聚合物供体PBDB-T混合时,设计的受护者表现出优异的装置性能。与在具有3.93%的电力转换效率(PCE)的文献中报告的父患者分子DC-IDT2T相比,具有平面结构的ITOCE具有8.87%和ITOID-2F的PCE,具有平面结构和增强的静电相互作用一个令人印象深刻的pce为12.17%。我们的结果展示了综合设计在高性能非富勒烯小分子受体方面的重要性。

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    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Shanghai Jiao Tong Univ Dept Phys &

    Astron Shanghai 200240 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

    Beijing Normal Univ Coll Chem Key Lab Energy Convers &

    Storage Mat Minist Educ Key Lab Theoret &

    Computat Photochem Beijing 100875 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
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