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首页> 外文期刊>Macromolecules >Effect of Side-Chain Engineering of Bithienylbenzodithiophene-alt-fluorobenzotriazole-Based Copolymers on the Thermal Stability and Photovoltaic Performance of Polymer Solar Cells
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Effect of Side-Chain Engineering of Bithienylbenzodithiophene-alt-fluorobenzotriazole-Based Copolymers on the Thermal Stability and Photovoltaic Performance of Polymer Solar Cells

机译:二苯基苯并二硫代噻吩-ATR-氟苯苯并二唑基共聚物侧链工程对聚合物太阳能电池的热稳定性和光伏性能的影响

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摘要

Side-chain engineering of conjugated polymer donor materials is an important way for improving photovoltaic performances of polymer solar cells (PSCs). On the basis of the polymer J61 synthesized in our group, here, we design and synthesize three new 2D-conjugated polymers J62, J63, and J64 with different types of side chains to further investigate the effect of side chain on their physicochemical and photovoltaic properties. With the narrow bandgap n-type organic semiconductor (n-OS) ITIC as acceptor, the optimized PSCs based on polymer donor of J62 with linear octyl, J63 with linear unsaturated hexylene, and J64 with cyclohexane side chains display power conversion efficiency (PCE) of 10.81%, 8.13%, and 8.59%, respectively. After thermal treatment at 200 degrees C for 2 h on the active layer,the PCE of the PSC based on J63 still keeps 92% of the original value, which verifies that the cross-linking of the polymer can improve the thermal stability of PSCs. Morphological studies show that the active layer based on J63 displays strong lamellar packing with RMS 1.26, and the active layer based on J64 shows little phase separation with RMS 0.65. The RMS of the active layer based on J62 is 0.900, and the size of phase separation is between that of J63 and J64, which indicates the excessive high lamellar packing or low phase separation is harmful to the performance of PSCs. These results indicate that the side-chain engineering is an effective way to adjust the aggregation of polymers and the morphology of blend films, which are key factors to influence the performance of PSCs.
机译:共轭聚合物供体材料的侧链工程是改善聚合物太阳能电池(PSC)的光伏性能的重要途径。在本组中合成的聚合物J61的基础上,我们在此设计和合成具有不同类型的侧链的三种新的2D共轭聚合物J62,J63和J64,以进一步研究侧链对其物理化学和光伏性能的影响。用窄的带隙N型有机半导体(N-OS)Itic作为受体,基于J62的聚合物供体的优化PSC,具有线性Octyl,J63,具有线性不饱和己烯,J64具有环己烷侧链显示电力转换效率(PCE)的分别10.81%,8.13%,和8.59%。在200摄氏度在有源层的200摄氏度下热处理后,基于J63的PSC的PCE仍然保持92%的原始值,这验证了聚合物的交联可以提高PSC的热稳定性。形态学研究表明,基于J63的有源层显示有RMS 1.26的强薄包装,基于J64的有源层显示出与RMS 0.65的相分离。基于J62的有源层的RMS为0.900,相分离的尺寸在J63和J64的尺寸之间,这表明过量的高层填充或低相分离对PSC的性能有害。这些结果表明,侧链工程是调节聚合物聚集和混合膜的形态的有效方法,这是影响PSC性能的关键因素。

著录项

  • 来源
    《Macromolecules》 |2018年第15期|共9页
  • 作者单位

    Univ Chinese Acad Sci Sch Chem Sci Beijing 100049 Peoples R China;

    Chinese Acad Sci Inst Chem CAS Key Lab Organ Solids CAS Res Educ Ctr Excellence Mol Sci Beijing 100190 Peoples R China;

    North Carolina State Univ Dept Phys Raleigh NC 27695 USA;

    Univ Chinese Acad Sci Sch Chem Sci Beijing 100049 Peoples R China;

    Univ Chinese Acad Sci Sch Chem Sci Beijing 100049 Peoples R China;

    Lawrence Berkeley Natl Lab Adv Light Source Berkeley CA 94720 USA;

    Chinese Acad Sci Inst Chem CAS Key Lab Organ Solids CAS Res Educ Ctr Excellence Mol Sci Beijing 100190 Peoples R China;

    Lawrence Berkeley Natl Lab Adv Light Source Berkeley CA 94720 USA;

    North Carolina State Univ Dept Phys Raleigh NC 27695 USA;

    Univ Chinese Acad Sci Sch Chem Sci Beijing 100049 Peoples R China;

    Univ Chinese Acad Sci Sch Chem Sci Beijing 100049 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 高分子化学(高聚物);
  • 关键词

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