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CsPbBr钙钛矿量子点/PFO聚合物复合薄膜的光学和结构特性

Optical and structural properties of CsPbBr perovskite quantum dots/PFO polymer composite thin films.

作者信息

Qaid Saif M H, Al-Asbahi B A, Ghaithan Hamid M, AlSalhi M S, Al Dwayyan Abdullah S

机构信息

Department of Physics & Astronomy, College of Sciences, King Saud University, Saudi Arabia; Department of Physics, Faculty of Science, Ibb University, Ibb, Yemen.

Department of Physics & Astronomy, College of Sciences, King Saud University, Saudi Arabia; Department of Physics, Faculty of Science, Sana'a University, Yemen.

出版信息

J Colloid Interface Sci. 2020 Mar 15;563:426-434. doi: 10.1016/j.jcis.2019.12.094. Epub 2019 Dec 23.

Abstract

The aim of this study is to investigate the optical and structural properties of polymer/perovskite quantum dots (QDs) composite thin films and estimate the applicability of using these blends as active materials in photonic devices. A solution has been utilized, which is processed based on conjugated polymer and perovskite QDs composite films. The incorporation of CsPbBr QDs, with various weight ratios, influences the structure of the thin films, as proven by several techniques. The results of the study showed that the surface of the poly(9,9-di-n-octylfluorenyl-2,7-diyl) (PFO)/CsPbBr thin films improved, when compared to that of the pristine CsPbBr thin film. The increase in the steepness parameter and decrease in both the energy gaps and Urbach tail, upon the increment of CsPbBr QDs, can be attributed to the decrease in the localized density of electronic states within the forbidden band gap of the hybrids. The overlap between the absorption spectrum of PFO and emission spectrum of CsPbBr QDs, and the enhancement in the emission peak of CsPbBr in the blends, confirmed the efficient non-radiative energy transfer between them.

摘要

本研究的目的是研究聚合物/钙钛矿量子点(QDs)复合薄膜的光学和结构性质,并评估将这些混合物用作光子器件活性材料的适用性。采用了一种基于共轭聚合物和钙钛矿量子点复合薄膜制备的溶液。通过多种技术证明,不同重量比的CsPbBr量子点的掺入影响了薄膜的结构。研究结果表明,与原始CsPbBr薄膜相比,聚(9,9-二正辛基芴-2,7-二基)(PFO)/CsPbBr薄膜的表面得到了改善。随着CsPbBr量子点的增加,陡度参数增加,能隙和乌尔巴赫尾均减小,这可归因于杂化体禁带内电子态局域密度的降低。PFO吸收光谱与CsPbBr量子点发射光谱的重叠以及混合物中CsPbBr发射峰的增强,证实了它们之间有效的非辐射能量转移。

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