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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >A synergistic Cs2CO3 ETL treatment to incorporate Cs cation into perovskite solar cells via two-step scalable fabrication
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A synergistic Cs2CO3 ETL treatment to incorporate Cs cation into perovskite solar cells via two-step scalable fabrication

机译:一种协同CS2CO3 ETL处理,通过两步可伸缩制造将Cs阳离子掺入钙钛矿太阳能电池中

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摘要

Triple cation CsFAMA perovskite films fabricated via a one-step method have recently gained attention as an outstanding light-harvesting layer for photovoltaic devices. However, questions remain over the suitability of one-step processes for the production of large-area films, owing to difficulties in controlling the crystallinity, in particular, scaling of the frequently used anti-solvent washing step. This can be mitigated through the use of the two-step method which has recently been used to produce large-area films via techniques such as slot dye coating, spray coating or printing techniques. Nevertheless, the poor solubility of Cs containing salts in IPA solutions has posed a challenge for forming triple cation perovskite films using the two-step method. In this study, we tackle this challenge through fabricating perovskite films on a caesium carbonate (Cs2CO3) precursor layer, enabling Cs incorporation within the film. Synergistically, we find that Cs2CO3 passivates the SnO2 electron transport layer (ETL) through interactions with Sn 3d orbitals, thereby promoting a reduction in trap states. Devices prepared with Cs2CO3 treatment also exhibited an improvement in the power conversion efficiency (PCE) from 19.73% in a control device to 20.96% (AM 1.5G, 100 mW cm(-2)) in the champion device. The Cs2CO3 treated devices (CsFAMA) showed improved stability, with un-encapsulated devices retaining nearly 80% efficiency after 20 days in ambient air.
机译:最近,通过一步法制备的三阳离子CsFAMA钙钛矿薄膜作为光伏器件的优秀集光层受到了关注。然而,由于难以控制结晶度,尤其是经常使用的抗溶剂洗涤步骤的结垢,一步法生产大面积薄膜的适用性仍然存在问题。这一点可以通过使用两步法来缓解,该方法最近已被用于通过槽染料涂层、喷涂或印刷技术等技术生产大面积薄膜。然而,含铯盐在IPA溶液中的溶解性差,这对使用两步法形成三阳离子钙钛矿薄膜构成了挑战。在这项研究中,我们通过在碳酸铯(Cs2CO3)前体层上制备钙钛矿薄膜来应对这一挑战,使Cs能够融入薄膜中。协同作用下,我们发现Cs2CO3通过与Sn 3d轨道的相互作用钝化SnO2电子传输层(ETL),从而促进陷阱态的减少。采用Cs2CO3处理制备的器件的功率转换效率(PCE)也有所提高,从对照器件的19.73%提高到冠军器件的20.96%(AM 1.5G,100 mW-cm(-2))。经Cs2CO3处理的设备(CsFAMA)显示出更好的稳定性,未封装的设备在环境空气中放置20天后保持近80%的效率。

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