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首页> 外文期刊>ACS nano >Light Harvesting and Charge Recombination in CH3NH3PbI3 Perovskite Solar Cells Studied by Hole Transport Layer Thickness Variation
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Light Harvesting and Charge Recombination in CH3NH3PbI3 Perovskite Solar Cells Studied by Hole Transport Layer Thickness Variation

机译:空穴传输层厚度变化研究CH3NH3PbI3钙钛矿太阳能电池的光收集和电荷复合

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摘要

A tailored optimization of perovskite solar cells requires a detailed understanding of the processes limiting the device efficiency. Here, we study the role of the hole transport layer (HTL) spiro-MeOTAD and its thickness in a mesoscopic TiO2-based solar cell architecture. We find that a sufficiently thick (200 nm) HTL not only increases the charge carrier collection efficiency but also the light harvesting efficiency. This is due to an enhanced reflection of a smooth HTL/Au electrode interface. The rough CH3NH3PbI3 perovskite surface requires an HTL thickness of >400 nm to avoid surface recombination and guarantee a high-Open-circuit voltage. Analyses of the electroluminescence efficiency and the diode ideality factor show that the open-circuit voltage becomes completely limited by trap-assisted recombination in the perovskite for a thick HTL. Thus, spiro-MeOTAD is a very good HTL choice from the device physics' point of view. The fill factor analyzed by the Suns-V-oc method is not transport limited, but trap-recombination limited as well. Consequently, a further optimization of the device has to focus on defects in the polycrystalline perovskite film.
机译:钙钛矿太阳能电池的量身定制优化要求对限制器件效率的工艺有详细的了解。在这里,我们研究了空穴传输层(HTL)spiro-MeOTAD的作用及其厚度在介观的TiO2基太阳能电池结构中的作用。我们发现足够厚的(200 nm)HTL不仅增加了电荷载流子收集效率,而且还提高了光收集效率。这是由于光滑的HTL / Au电极界面的反射增强。粗糙的CH3NH3PbI3钙钛矿表面要求HTL厚度> 400 nm,以避免表面复合并确保高开路电压。对电致发光效率和二极管理想因子的分析表明,对于厚厚的HTL,钙钛矿中陷阱辅助复合完全限制了开路电压。因此,从设备物理学的角度来看,spiro-MeOTAD是一个非常好的HTL选择。通过Suns-V-oc方法分析的填充因子不受传输限制,但陷阱陷阱也受限制。因此,器件的进一步优化必须集中在多晶钙钛矿膜中的缺陷上。

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