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Development of organic-inorganic double hole-transporting material for high performance perovskite solar cells

机译:高性能钙钛矿太阳能电池用有机-无机双空穴传输材料的开发

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摘要

The control of the optoelectronic properties of the interlayers of perovskite solar cells (PSCs) is crucial for achieving high photovoltaic performances. Of the solution-processable interlayer candidates, NiOx is considered one of the best inorganic hole-transporting layer (HTL) materials. However, the power conversion efficiencies (PCEs) of NiOx-based PSCs are limited by the unfavorable contact between perovskite layers and NiOx HTLs, the high density of surface trap sites, and the inefficient charge extraction from perovskite photoactive layers to anodes. Here, we introduce a new organic-inorganic double HTL consisting of a Cu:NiOx thin film passivated by a conjugated polyelectrolyte (PhNa-1T) film. This double HTL has a significantly lower pinhole density and forms better contact with perovskite films, which results in enhanced charge extraction. As a result, the PCEs of PSCs fabricated with the double HTL are impressively improved up to 17.0%, which is more than 25% higher than that of the corresponding PSC with a Cu:NiOx HTL. Moreover, PSCs with the double HTLs exhibit similar stabilities under ambient conditions to devices using inorganic Cu:NiOx. Therefore, this organic-inorganic double HTL is a promising interlayer material for high performance PSCs with high air stability.
机译:钙钛矿太阳能电池(PSC)中间层的光电特性的控制对于实现高光伏性能至关重要。在可溶液处理的中间层候选物中,NiOx被认为是最好的无机空穴传输层(HTL)材料之一。但是,基于钙钛矿的PSC的功率转换效率(PCE)受钙钛矿层和NiOx HTL之间不利的接触,表面陷阱位点的高密度以及从钙钛矿光敏层到阳极的电荷提取效率的限制。在这里,我们介绍了一种新的有机-无机双HTL,该复合HTL由被共轭聚电解质(PhNa-1T)膜钝化的Cu:NiOx薄膜组成。这种双重HTL的针孔密度显着降低,并且与钙钛矿薄膜形成更好的接触,从而增强了电荷提取。结果,用双重HTL制成的PSC的PCE令人印象深刻地提高了17.0%,比使用Cu:NiOx HTL的相应PSC的PCE高出25%以上。此外,具有双重HTL的PSC在环境条件下表现出与使用无机Cu:NiOx的器件相似的稳定性。因此,这种有机-无机双HTL是用于具有高空气稳定性的高性能PSC的有前途的中间材料。

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