State Key Laboratory of Advanced Technologies for Materials Synthesis and Processing, International School of Materials Science and Engineering, Wuhan University of Technology, 122 Luoshi Road, Wuhan, 430070, China.
Department of Materials Science and Engineering, Monash University, Wellington Road, Clayton, VIC, 3800, Australia.
Adv Mater. 2017 May;29(20). doi: 10.1002/adma.201601715. Epub 2017 Feb 22.
The efficiencies of the hybrid organic-inorganic perovskite solar cells have been rapidly approaching the benchmarks held by the leading thin-film photovoltaic technologies. Arguably, one of the most important factors leading to this rapid advancement is the ability to manipulate the microstructure of the perovskite layer and the adjacent functional layers within the device. Here, an analysis of the nucleation and growth models relevant to the formation of perovskite films is provided, along with the effect of the perovskite microstructure (grain sizes and voids) on device performance. In addition, the effect of a compact or mesoporous electron-transport-layer (ETL) microstructure on the perovskite film formation and the optical/photoelectric properties at the ETL/perovskite interface are overviewed. Insight into the formation of the functional layers within a perovskite solar cell is provided, and potential avenues for further development of the perovskite microstructure are identified.
杂化有机-无机钙钛矿太阳能电池的效率已经迅速接近领先的薄膜光伏技术的基准。可以说,导致这一快速发展的最重要因素之一是能够控制钙钛矿层和器件中相邻功能层的微结构。本文提供了与钙钛矿薄膜形成相关的成核和生长模型的分析,以及钙钛矿微结构(晶粒尺寸和空隙)对器件性能的影响。此外,还综述了致密或介孔电子传输层(ETL)微结构对钙钛矿薄膜形成以及 ETL/钙钛矿界面的光学/光电性能的影响。本文深入了解了钙钛矿太阳能电池内各功能层的形成,并确定了钙钛矿微结构进一步发展的潜在途径。