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首页> 外文期刊>ACS applied materials & interfaces >Cross-Linkable and Alcohol-Soluble Pyridine-Incorporated Polyfluorene Derivative as a Cathode Interface Layer for High-Efficiency and Stable Organic Solar Cells
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Cross-Linkable and Alcohol-Soluble Pyridine-Incorporated Polyfluorene Derivative as a Cathode Interface Layer for High-Efficiency and Stable Organic Solar Cells

机译:可交联和可溶性吡啶掺入的多氟烯衍生物作为用于高效和稳定的有机太阳能电池的阴极界面层

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摘要

Device performance and commercialization of organic solar cells (OSCs) are strongly influenced by the characteristics of the interface layers. Cross-linked polymer interface layers with solvent-resistant properties are very compatible with large-area solution-processing methods of OSCs and may be beneficial to the environmental stability of OSCs due to the viscoelastic and cross-linked characteristics of the cross-linked polymer. In this work, a novel cross-linkable and alcohol-soluble pyridine-incorporated polyfluorene derivative, denoted as PFOPy, is synthesized and used as a cathode interface layer (CIL) in OSCs. For PFOPy, the pendant epoxy group can be effectively cross linked through cationic polymerization under thermal treatment and the pendant pyridine group can offer good alcohol solubility. Optical absorption tests of PFOPy films before/after washing by chloroform demonstrate the excellent solvent-resistance property for the cross-linked PFOPy film. Compared with the typical ZnO CIL, the cross-linked PFOPy CIL can also substantially reduce ITO’s work function and form a better interface contact with the active layer. Utilizing an inverted device structure and a typical active layer of PM6:Y6, ZnO-based OSCs display an optimal power conversion efficiency (PCE) of 15.83% while PFOPy-based OSCs exhibit superior photovoltaic performance with an optimal PCE of 16.20%. Moreover, ZnO-based and PFOPy-based OSCs separately maintain 89% and 90% of the corresponding initial PCE after 12 h of illumination, indicating similarly excellent photostability. More importantly, after 26 complete thermal cycles, ZnO-based OSCs only maintain 81% of the initial PCE while PFOPy-based OSCs retain 92% of the initial PCE and exhibit obviously better thermal cycling stability, indicating that the cross-linked PFOPy CIL should offer stronger interface robustness against thermal cycling stress due to the viscoelastic and cross-linked characteristics of PFOPy. The impressive results indicate that the cross-linked PFOPy CIL would be a very promising CIL in OSCs.
机译:有机太阳能电池(OSC)的器件性能和商业化受到界面层特性的强烈影响。具有耐溶剂性能的交联聚合物界面层与OSC的大面积溶液处理方法非常兼容,并且由于交联聚合物的粘弹性和交联特性,可能有利于OSC的环境稳定性。在这项工作中,合成了一种新型的可交联且醇溶于吡啶的聚芴衍生物PFOPy,并将其用作OSCs中的阴极界面层(CIL)。对于PFOPy,在热处理下通过阳离子聚合可以有效地交联悬垂环氧基,并且悬垂吡啶基可以提供良好的醇溶性。用氯仿清洗前后PFOPy薄膜的光吸收测试表明,交联PFOPy薄膜具有优异的耐溶剂性能。与典型的ZnO-CIL相比,交联PFOPy-CIL还可以显著降低ITO的功函数,并与活性层形成更好的界面接触。利用倒置的器件结构和PM6:Y6的典型有源层,ZnO基OSC的最佳功率转换效率(PCE)为15.83%,而PFOPy基OSC的最佳PCE为16.20%,具有优异的光伏性能。此外,ZnO基和PFOPy基OSC在光照12h后分别保持了相应初始PCE的89%和90%,这表明其具有同样优异的光稳定性。更重要的是,经过26次完整的热循环后,ZnO基OSC仅保留了初始PCE的81%,而PFOPy基OSC保留了初始PCE的92%,并表现出明显更好的热循环稳定性,这表明由于PFOPy的粘弹性和交联特性,交联PFOPy CIL应能提供更强的界面鲁棒性,以抵抗热循环应力。令人印象深刻的结果表明,交联的PFOPy-CIL将是OSCs中非常有前途的CIL。

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  • 来源
    《ACS applied materials & interfaces》 |2021年第10期|共9页
  • 作者单位

    School of Materials Science and Engineering &

    Guangxi Key Laboratory of Information Materials Guilin University of Electronic Technology;

    School of Materials Science and Engineering &

    Guangxi Key Laboratory of Information Materials Guilin University of Electronic Technology;

    School of Materials Science and Engineering &

    Guangxi Key Laboratory of Information Materials Guilin University of Electronic Technology;

    School of Chemistry and Environment Jiaying University;

    Institute of Polymer Optoelectronic Materials &

    Devices State Key Laboratory of Luminescent Materials &

    Devices South China University of Technology;

    Institute of Polymer Optoelectronic Materials &

    Devices State Key Laboratory of Luminescent Materials &

    Devices South China University of Technology;

    School of Materials Science and Engineering &

    Guangxi Key Laboratory of Information Materials Guilin University of Electronic Technology;

    School of Materials Science and Engineering &

    Guangxi Key Laboratory of Information Materials Guilin University of Electronic Technology;

    Institute of Polymer Optoelectronic Materials &

    Devices State Key Laboratory of Luminescent Materials &

    Devices South China University of Technology;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;
  • 关键词

    cross-linkable polymer; cathode interface layer; organic solar cells; photovoltaic efficiency; environmental stability;

    机译:交联聚合物;阴极界面层;有机太阳能电池;光伏效率;环境稳定性;

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