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通过在室温下简单混合和搅拌,在空气中制备具有高光致发光和稳定性的硅壳钙钛矿量子点。

Toward Highly Luminescent and Stabilized Silica-Coated Perovskite Quantum Dots through Simply Mixing and Stirring under Room Temperature in Air.

机构信息

State Key Laboratory of Luminescence and Applications , Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences , Changchun 130033 , China.

University of Chinese Academy of Sciences , Beijing 100039 , China.

出版信息

ACS Appl Mater Interfaces. 2018 Apr 18;10(15):13053-13061. doi: 10.1021/acsami.7b18964. Epub 2018 Apr 4.

DOI:10.1021/acsami.7b18964
PMID:29584397
Abstract

Methylammonium (MA) lead halide (MAPbX, X = Cl, Br, I) perovskite quantum dots (PQDs) are very sensitive to environment (moisture, oxygen, and temperature), suffering from poor stability. To improve the stability, we synthesized silica-coated PQDs (SPQDs) by an improved ligand-assisted reprecipitation method through simply mixing and stirring under room temperature in air without adding water and catalyst, the whole process took only a few seconds. The photoluminescence (PL) spectra of the SPQDs can be tuned continuously from 460 to 662 nm via adjusting the composition proportion of precursors. The highest PL quantum yields (PLQYs) of blue-, green-, and red-emissive SPQDs are 56, 95, and 70%, respectively. The SPQDs show remarkably improved environmental and thermal stability compared to the naked PQDs because of effective barrier created by the coated silica between the core materials and the ambience. Furthermore, it is found that different light-emitting SPQDs can maintain their original PL properties after mixing of them and anion-exchange reactions have not happened. These attributes were then used to mix green- and yellow-emissive SPQDs with polystyrene (PS) to form color-converting layers for the fabrication of white light-emitting devices (WLEDs). The WLEDs exhibit excellent white light characteristics with CIE 1931 color coordinates of (0.31, 0.34) and color rendering index (CRI) of 85, demonstrating promising applications of SPQDs in lighting and displays.

摘要

甲胺(MA)铅卤(MAPbX,X=Cl、Br、I)钙钛矿量子点(PQDs)对环境(湿度、氧气和温度)非常敏感,稳定性差。为了提高稳定性,我们通过简单的混合和搅拌,在室温下在空气中进行改进的配体辅助再沉淀法合成了硅壳覆盖的 PQDs(SPQDs),无需添加水和催化剂,整个过程只需几秒钟。通过调整前驱体的组成比例,可以连续调节 SPQDs 的光致发光(PL)光谱,从 460nm 到 662nm。蓝色、绿色和红色发射的 SPQDs 的最高 PL 量子产率(PLQYs)分别为 56%、95%和 70%。与裸 PQDs 相比,SPQDs 表现出显著改善的环境和热稳定性,因为核心材料和环境之间的涂层硅有效地形成了屏障。此外,还发现不同发光的 SPQDs 在混合后可以保持其原始的 PL 特性,并且没有发生阴离子交换反应。这些特性随后被用于将绿色和黄色发射的 SPQDs 与聚苯乙烯(PS)混合,形成用于制造白光发光器件(WLEDs)的颜色转换层。WLEDs 表现出优异的白光特性,CIE 1931 颜色坐标为(0.31,0.34),显色指数(CRI)为 85,表明 SPQDs 在照明和显示方面具有广阔的应用前景。

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