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Towards Efficient Integrated Perovskite/Organic Bulk Heterojunction Solar Cells: Interfacial Energetic Requirement to Reduce Charge Carrier Recombination Losses

机译:朝向高效的集成钙钛矿/有机散装异质结太阳能电池:界面精力充沛的要求,以减少电荷载体重组损失

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摘要

Integrated perovskite/organic bulk heterojunction (BHJ) solar cells have the potential to enhance the efficiency of perovskite solar cells by a simple one-step deposition of an organic BHJ blend photoactive layer on top of the perovskite absorber. It is found that inverted structure integrated solar cells show significantly increased short-circuit current (J(sc)) gained from the complementary absorption of the organic BHJ layer compared to the reference perovskite-only devices. However, this increase in J(sc) is not directly reflected as an increase in power conversion efficiency of the devices due to a loss of fill factor. Herein, the origin of this efficiency loss is investigated. It is found that a significant energetic barrier (approximate to 250 meV) exists at the perovskite/organic BHJ interface. This interfacial barrier prevents efficient transport of photogenerated charge carriers (holes) from the BHJ layer to the perovskite layer, leading to charge accumulation at the perovskite/BHJ interface. Such accumulation is found to cause undesirable recombination of charge carriers, lowering surface photovoltage of the photoactive layers and device efficiency via fill factor loss. The results highlight a critical role of the interfacial energetics in such integrated cells and provide useful guidelines for photoactive materials (both perovskite and organic semiconductors) required for high-performance devices.
机译:集成的钙钛矿/有机批变异质结(BHJ)太阳能电池具有通过在钙钛矿吸收器的顶部的简单一步沉积的有机BHJ混合物光活性层的简单一步沉积来提高钙钛矿太阳能电池的效率。发现倒置结构集成太阳能电池显示出从有机BHJ层的互补吸收的短路电流(j(sc))显着增加与仅参考钙钛矿的设备相比。然而,由于填充因子的损失,J(SC)的这种增加不直接反射为器件的功率转换效率的增加。这里,研究了这种效率损失的来源。发现在Perovskite /有机BHJ界面处存在显着的能量屏障(近似为250meV)。该界面屏障防止了从BHJ层到钙钛矿层的光生电电荷载体(孔)的有效运输,导致PEROVSKITE / BHJ接口处的电荷累积。发现这种累积导致电荷载流子的不希望的重组,通过填充因子损失降低光活性层的表面光伏和器件效率。结果突出了这种综合电池中界面能量学的关键作用,提供了高性能设备所需的光活性材料(钙钛矿和有机半导体)的有用指导。

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  • 来源
    《Advanced Functional Materials》 |2020年第25期|2001482.1-2001482.8|共8页
  • 作者单位

    Imperial Coll London Dept Phys London SW7 2AZ England|Imperial Coll London Ctr Plast Elect London SW7 2AZ England;

    Imperial Coll London Ctr Plast Elect London SW7 2AZ England|Imperial Coll London Dept Chem London SW7 2AZ England;

    Imperial Coll London Dept Phys London SW7 2AZ England|Imperial Coll London Ctr Plast Elect London SW7 2AZ England|Imperial Coll London Dept Chem London SW7 2AZ England|Gwangju Inst Sci & Technol Heeger Ctr Adv Mat Gwangju 61005 South Korea;

    Gwangju Inst Sci & Technol Heeger Ctr Adv Mat Gwangju 61005 South Korea;

    Imperial Coll London Dept Phys London SW7 2AZ England|Imperial Coll London Ctr Plast Elect London SW7 2AZ England;

    Imperial Coll London Ctr Plast Elect London SW7 2AZ England|Imperial Coll London Dept Chem London SW7 2AZ England|Imperial Coll London Dept Mat London SW7 2AZ England;

    Swansea Univ Coll Engn SPECIFIC Bay Campus Swansea SA1 8EN W Glam Wales|Queen Mary Univ London Sch Biol & Chem Sci London E1 4NS England;

    Imperial Coll London Ctr Plast Elect London SW7 2AZ England|Imperial Coll London Dept Mat London SW7 2AZ England;

    Gwangju Inst Sci & Technol Heeger Ctr Adv Mat Gwangju 61005 South Korea;

    Imperial Coll London Ctr Plast Elect London SW7 2AZ England|Imperial Coll London Dept Chem London SW7 2AZ England|Swansea Univ Coll Engn SPECIFIC Bay Campus Swansea SA1 8EN W Glam Wales;

    Imperial Coll London Dept Phys London SW7 2AZ England|Imperial Coll London Ctr Plast Elect London SW7 2AZ England;

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

    bulk heterojunctions; integrated cell; perovskites; photovoltages; solar cells; transient optical spectroscopy;

    机译:散装杂交;综合细胞;Perovskites;光伏;太阳能电池;瞬态光谱;

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