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通过环境条件合成获得的无铅发光钙钛矿纳米晶体

Lead-Free, Luminescent Perovskite Nanocrystals Obtained through Ambient Condition Synthesis.

作者信息

Treber Fiona, Frank Kilian, Nickel Bert, Lampe Carola, Urban Alexander S

机构信息

Nanospectroscopy Group and Center for NanoScience, Faculty of Physics, Ludwig-Maximilians-Universität München, 80539, München, Germany.

Soft Condensed Matter Group and Center for NanoScience, Faculty of Physics, Ludwig-Maximilians-Universität München, 80539, München, Germany.

出版信息

Small. 2023 Jul;19(30):e2300525. doi: 10.1002/smll.202300525. Epub 2023 Apr 14.

Abstract

Heterovalently substituting toxic lead is an increasingly popular design strategy to obtain environmentally sustainable variants of the exciting material class of halide perovskites. Perovskite nanocrystals (NCs) obtained through solution-based methods exhibit exceedingly high optical quality. Unfortunately, most of these synthesis routes still require reaction under inert gas and at very high temperatures. Herein a novel synthesis routine for lead-free double perovskite (LFDP) NCs is presented. An approach based upon the hot injection and ligand-assisted reprecipitation (LARP) methods to achieve a low-temperature and ambient atmosphere-based synthesis for manganese-doped Cs NaBiCl NCs is presented. Mn incorporation is critical for the otherwise non-emissive material, with a 9:1 Bi:Mn precursor ratio maximizing the bright orange photoluminescence (PL) and quantum yield (QY). Higher synthesis temperatures slightly increase the material's performance, yet NCs synthesized at room temperature are still emissive, highlighting the versatility of the synthetic approach. While the material's indirect bandgap limits its appeal for optoelectronics, this feature could benefit photocatalysis due to longer carrier lifetimes. Moreover, the developed synthesis is facile and can rapidly be adapted to other more viable material compositions and up-scaled to realize applications directly.

摘要

异价取代有毒的铅是一种越来越流行的设计策略,用于获得令人兴奋的卤化物钙钛矿材料类别的环境可持续变体。通过溶液法获得的钙钛矿纳米晶体(NCs)具有极高的光学质量。不幸的是,这些合成路线大多仍需要在惰性气体和非常高的温度下进行反应。本文提出了一种用于无铅双钙钛矿(LFDP)NCs的新型合成程序。提出了一种基于热注入和配体辅助再沉淀(LARP)方法的途径,以实现基于低温和环境气氛的锰掺杂CsNaBiCl NCs的合成。锰的掺入对于原本无发射性的材料至关重要,Bi:Mn前驱体比例为9:1时可使亮橙色光致发光(PL)和量子产率(QY)最大化。较高的合成温度会略微提高材料的性能,但在室温下合成的NCs仍具有发射性,突出了合成方法的通用性。虽然该材料的间接带隙限制了其在光电子学方面的吸引力,但由于载流子寿命较长,这一特性可能有利于光催化。此外,所开发的合成方法简便,可迅速适应其他更可行的材料组成,并可扩大规模以直接实现应用。

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