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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Energy level-modulated non-fullerene small molecule acceptors for improved V-OC and efficiency of inverted perovskite solar cells
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Energy level-modulated non-fullerene small molecule acceptors for improved V-OC and efficiency of inverted perovskite solar cells

机译:能量水平调制的非富勒烯小分子受体,提高V-OC和倒钙钛矿太阳能电池的效率

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摘要

The electron transport layer (ETL) plays a significant role in advancing the high efficiency and stability of solution-processed perovskite solar cells (PVSCs). Here, three commercialized n-type non-fullerene small molecule acceptors (IT-4X) with modulated energy levels are introduced as excellent alternative ETLs to replace the commonly used fullerene-based ETL in planar inverted PVSCs. The best-performing PVSCs are constructed by using the IT-4M as the ETL with a champion power conversion efficiency (PCE) of 17.65%, which is superior to that of the typical PCBM-based device. Among the PVSCs based on the three IT-4X ETLs, the differences of photovoltaic performances mainly exist in open-circuit voltage (V-OC) and PCE, which are closely related to the built-in potential in PVSCs, directly influenced by the varied LUMOs of the IT-4X molecules. Furthermore, because of the superior hydrophobic properties, all the PVSCs based on IT-4X ETLs show improved long-term stability in the ambient atmosphere compared to the reference devices. In addition, the IT-4X molecules also deliver outstanding performance when used as the interfacial layer with PCEs approaching 19%. The results in this work present the promising prospect of non-fullerene small molecule acceptors for application in the PVSC field, and reveal that regulating the energy levels of ETLs is beneficial to maximize the device outputs of V-OC and PCE.
机译:电子传输层(ETL)在推进溶液加工的钙钛矿太阳能电池(PVSC)的高效率和稳定性方面起着重要作用。这里,具有调制能量水平的三种商业化的N型非富勒烯小分子受体(IT-4X)作为优异的替代ETL,以替代平面倒置PVSC中的常用富勒烯的ETL。通过使用IT-4M作为ETL构造的最佳性能PVSC,其冠军电源转换效率(PCE)为17.65%,其优于典型的PCBM基础设备。在基于三个IT-4X ETL的PVSC中,光伏性能主要存在于开路电压(V-OC)和PCE中,与PVSC的内置电位密切相关,直接受到各种变化的影响Lumos的IT-4x分子。此外,由于疏水性质,基于IT-4X EtL的所有PVSC显示在环境气氛中,与参考装置相比,在环境气氛中显示出改善的长期稳定性。此外,IT-4X分子还配用作为接近19%的PCS的界面层时提供出色的性能。这项工作的结果存在非富勒烯小分子受体的有希望的前景,用于在PVSC场中应用,并揭示调节ETL的能量水平有利于V-OC和PCE的器件输出。

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    Shenzhen Univ Coll Mat Sci &

    Engn Shenzhen Key Lab Polymer Sci &

    Technol Shenzhen 518060 Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Shenzhen Univ Coll Mat Sci &

    Engn Shenzhen Key Lab Polymer Sci &

    Technol Shenzhen 518060 Peoples R China;

    Shenzhen Univ Coll Mat Sci &

    Engn Shenzhen Key Lab Polymer Sci &

    Technol Shenzhen 518060 Peoples R China;

    Shenzhen Univ Coll Mat Sci &

    Engn Shenzhen Key Lab Polymer Sci &

    Technol Shenzhen 518060 Peoples R China;

    Chinese Acad Sci Ningbo Inst Mat Technol &

    Engn Ningbo 315201 Zhejiang Peoples R China;

    Shenzhen Univ Coll Mat Sci &

    Engn Shenzhen Key Lab Polymer Sci &

    Technol Shenzhen 518060 Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学;
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