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使用乙酰丙酮锆优化基于SnO的电子传输层以制备高效稳定的钙钛矿太阳能电池

Optimization of a SnO-Based Electron Transport Layer Using Zirconium Acetylacetonate for Efficient and Stable Perovskite Solar Cells.

作者信息

Zhang Huimin, Liang Chunjun, Sun Fulin, Cai Yuxin, Song Qi, Gong Hongkang, Li Dan, You Fangtian, He Zhiqun

机构信息

Key Laboratory of Luminescence and Optical Information, Ministry of Education, School of Science, Beijing Jiaotong University, Beijing 100044, China.

出版信息

ACS Appl Mater Interfaces. 2021 Nov 17;13(45):54579-54588. doi: 10.1021/acsami.1c16600. Epub 2021 Nov 3.

Abstract

SnO is a promising material for use as an electron transfer layer (ETL) in perovskite photovoltaic devices due to its suitable energy level alignment with the perovskite, high electron mobility, excellent optical transmission, and low-temperature processability. The development of high-quality SnO ETLs with a large coverage and that are pinhole-free is crucial to enhancing the performance and stability of the perovskite solar cells (PSCs). In this work, zirconium acetylacetonate (ZrAcac) was introduced to form a double-layered ETL, in which an ideal cascade energy level alignment is obtained. The surface of the resulting ZrAcac/SnO (Zr-SnO) layer is compact and smooth and had a high coverage of SnO, which enhances the electron extractability, improves ion blocking, and reduces the charge accumulation at the interface. As a result, the fill factor (FF, 80.99%), power conversion efficiency (PCE, 22.44%), and stability of the Zr-SnO device have been significantly improved compared to PSCs with only a SnO ETL. In addition, the PCE of the Zr-SnO device is maintained at more than 80% of the initial efficiency after 500 h of continuous illumination.

摘要

由于氧化锡(SnO)与钙钛矿具有合适的能级对准、高电子迁移率、优异的光学透过率以及低温可加工性,它是一种在钙钛矿光伏器件中用作电子传输层(ETL)的很有前景的材料。开发具有大面积覆盖且无针孔的高质量SnO电子传输层对于提高钙钛矿太阳能电池(PSC)的性能和稳定性至关重要。在这项工作中,引入乙酰丙酮锆(ZrAcac)以形成双层电子传输层,其中获得了理想的级联能级对准。所得的ZrAcac/SnO(Zr-SnO)层表面致密且光滑,SnO覆盖率高,这增强了电子提取能力,改善了离子阻挡,并减少了界面处的电荷积累。结果,与仅具有SnO电子传输层的PSC相比,Zr-SnO器件的填充因子(FF,80.99%)、功率转换效率(PCE,22.44%)和稳定性都得到了显著提高。此外,Zr-SnO器件在连续光照500小时后,其PCE保持在初始效率的80%以上。

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