首页> 外文期刊>Advanced energy materials >Laser-Generated Nanocrystals in Perovskite: Universal Embedding of Ligand-Free and Sub-10 nm Nanocrystals in Solution-Processed Metal Halide Perovskite Films for Effectively Modulated Optoelectronic Performance
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Laser-Generated Nanocrystals in Perovskite: Universal Embedding of Ligand-Free and Sub-10 nm Nanocrystals in Solution-Processed Metal Halide Perovskite Films for Effectively Modulated Optoelectronic Performance

机译:钙钛矿中激光产生的纳米晶体:在溶液处理的金属卤化物钙钛矿膜中普遍嵌入无配体和10 nm以下的纳米晶体,以有效调制光电性能

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摘要

Regulating the chemical/physical features of solution processed metal halide perovskite films by integrating sub-10 nm nanocrystals is a highly promising strategy to advance their outstanding optoelectronic performance. However, significant challenges remain for the universal embedding of the well-defined nanocrystals in the film matrix. By generating nanocrystals in desired solvents via pulsed laser irradiation in liquid, the authors demonstrate the effective decoration of sub-10 nm nanocrystals in perovskite films for enhanced optoelectronic performance. It is believed that this improved performance is due to the modification of the widely adopted "antisolvent" to a novel "anti-colloidal-solution" (ACS). Exemplified by a typical ACS; carbon dots in chlorobenzene, its encouraging superiority in regulating, not only the films morphology, but also the electronic structure, is demonstrated. This results in perovskite solar cells with a champion efficiency of 21.41% as well as a pronounced stability over 5000 h in relative humidity of 40%. The capability of nanocrystal embedding for boosted photovoltaic performance is further exploited by employing other laser generated ACSs. Such a strategy may open up a route to regulating hybrid perovskite film performance via nanocrystal embedding for photovoltaics or even beyond optoelectronic applications.
机译:通过整合亚10 nm纳米晶体来调节溶液加工的金属卤化物钙钛矿薄膜的化学/物理特征是提高其出色的光电性能的极有前途的策略。然而,对于将明确定义的纳米晶体普遍嵌入膜基质中仍然存在重大挑战。通过在液体中通过脉冲激光辐照在所需溶剂中生成纳米晶体,作者证明了钙钛矿薄膜中亚10纳米纳米晶体的有效装饰,以增强光电性能。据信,这种改进的性能归因于将广泛采用的“抗溶剂”修改为新型的“抗胶体溶液”(ACS)。以典型的ACS为例;证明了氯苯中的碳点具有令人鼓舞的调节优势,不仅具有薄膜形态,而且还具有电子结构。这导致钙钛矿太阳能电池的最佳效率为21.41%,在相对湿度为40%的情况下,在5000小时内具有明显的稳定性。通过采用其他激光产生的ACS,进一步开发了纳米晶体嵌入的增强光伏性能的能力。这样的策略可以为通过纳米晶嵌入光伏技术甚至在光电应用之外开辟一条调控钙钛矿杂化膜性能的途径。

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