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Structure and Growth Control of Organic–Inorganic Halide Perovskites for Optoelectronics: From Polycrystalline Films to Single Crystals

机译:用于光电的有机-无机卤化物钙钛矿的结构和生长控制:从多晶膜到单晶

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摘要

Recently, organic–inorganic halide perovskites have sparked tremendous research interest because of their ground‐breaking photovoltaic performance. The crystallization process and crystal shape of perovskites have striking impacts on their optoelectronic properties. Polycrystalline films and single crystals are two main forms of perovskites. Currently, perovskite thin films have been under intensive investigation while studies of perovskite single crystals are just in their infancy. This review article is concentrated upon the control of perovskite structures and growth, which are intimately correlated for improvements of not only solar cells but also light‐emitting diodes, lasers, and photodetectors. We begin with the survey of the film formation process of perovskites including deposition methods and morphological optimization avenues. Strategies such as the use of additives, thermal annealing, solvent annealing, atmospheric control, and solvent engineering have been successfully employed to yield high‐quality perovskite films. Next, we turn to summarize the shape evolution of perovskites single crystals from three‐dimensional large sized single crystals, two‐dimensional nanoplates, one‐dimensional nanowires, to zero‐dimensional quantum dots. Siginificant functions of perovskites single crystals are highlighted, which benefit fundamental studies of intrinsic photophysics. Then, the growth mechanisms of the previously mentioned perovskite crystals are unveiled. Lastly, perspectives for structure and growth control of perovskites are outlined towards high‐performance (opto)electronic devices.
机译:最近,有机-无机卤化物钙钛矿因其开创性的光伏性能而引起了巨大的研究兴趣。钙钛矿的结晶过程和晶体形状对其光电性能产生了显着影响。多晶膜和单晶是钙钛矿的两种主要形式。目前,钙钛矿薄膜已受到深入研究,而钙钛矿单晶的研究才刚刚起步。这篇评论文章集中在钙钛矿结构和生长的控制上,钙钛矿的结构和生长与改善不仅与太阳能电池而且还与发光二极管,激光器和光电探测器密切相关。我们从钙钛矿成膜过程的调查开始,包括沉积方法和形态优化途径。添加剂的使用,热退火,溶剂退火,气氛控制和溶剂工程等策略已成功用于生产高质量的钙钛矿薄膜。接下来,我们总结钙钛矿单晶的形状演变,从三维大型单晶,二维纳米板,一维纳米线到零维量子点。突出钙钛矿单晶的显着功能,这有益于内在光物理学的基础研究。然后,揭示了前述钙钛矿晶体的生长机理。最后,概述了钙钛矿的结构和生长控制的观点,介绍了高性能(光电)电子设备。

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