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碘化亚胺添加剂对钙钛矿太阳能电池的背面钝化作用:稳定性和迟滞性的改善

Rear-Surface Passivation by Melaminium Iodide Additive for Stable and Hysteresis-less Perovskite Solar Cells.

机构信息

School of Chemical Engineering , Sungkyunkwan University (SKKU) , Suwon 440-746 , Korea.

出版信息

ACS Appl Mater Interfaces. 2018 Aug 1;10(30):25372-25383. doi: 10.1021/acsami.8b06616. Epub 2018 Jul 20.

DOI:10.1021/acsami.8b06616
PMID:29993240
Abstract

Surface passivation of perovskite grains is one of the promising methods to reduce recombination and improve stability of perovskite solar cells (PSCs). We herein report the effect of a melaminium iodide additive on the photovoltaic performance of PSCs based on (FAPbI)(CsPbBr) perovskite. Cyclic -C═N- and primary amine in melamine are a good hydrogen bond acceptor and Lewis base, which can interact with both the organic cation and Lewis acidic lead iodide in the perovskite film. Melaminium iodide is synthesized and added to the precursor solution, which is directly spin-coated to form the perovskite film. The presence of melaminium iodide additive reduces the trap density from 1.02 × 10 to 0.645 × 10 cm, which leads to the reduction of nonradiative recombination and thereby improving the mean open-circuit voltage and the fill factor from 1.054 to 1.095 V and from 0.693 to 0.725 V, receptively. In addition, photocurrent-voltage hysteresis is reduced by the melaminium iodide additive, which results in an enhanced average power conversion efficiency, obtained from reverse and forward scanned data, from 15.86 to 17.32%. Time-resolved photoluminescence confirms that melaminium iodide plays a more important role in passivating the rear surface of the perovskite layer contacting the hole transporting spiro-MeOTAD layer. An aging test under a relative humidity of 65% reveals that melaminium iodide improves stability because of the suppression of the defect evolved by moisture.

摘要

钙钛矿晶粒的表面钝化是减少复合和提高钙钛矿太阳能电池(PSCs)稳定性的一种很有前途的方法。我们在此报告了碘化脒添加剂对基于(FAPbI)(CsPbBr)钙钛矿的PSC 的光伏性能的影响。三聚氰胺中的环-C═N-和伯胺是良好的氢键受体和路易斯碱,可与钙钛矿薄膜中的有机阳离子和路易斯酸性碘化铅相互作用。碘化脒被合成并添加到前驱体溶液中,然后直接旋涂形成钙钛矿薄膜。碘化脒添加剂的存在将陷阱密度从 1.02×10 降低到 0.645×10 cm,这导致非辐射复合减少,从而使开路电压和填充因子分别从 1.054 提高到 1.095 V 和从 0.693 提高到 0.725 V。此外,碘化脒添加剂降低了光电流-电压滞后,从而提高了从反向和正向扫描数据获得的平均功率转换效率,从 15.86 提高到 17.32%。时间分辨光致发光证实,碘化脒在钝化与空穴传输 spiro-MeOTAD 层接触的钙钛矿层的后表面方面起着更重要的作用。在相对湿度为 65%的老化测试表明,碘化脒通过抑制由湿气引起的缺陷来提高稳定性。

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