Papagiorgis Paris G, Manoli Andreas, Alexiou Androniki, Karacosta Petroula, Karagiorgis Xenofon, Papaparaskeva Georgia, Bernasconi Caterina, Bodnarchuk Maryna I, Kovalenko Maksym V, Krasia-Christoforou Theodora, Itskos Grigorios
Experimental Condensed Matter Physics Laboratory, Department of Physics, University of Cyprus, Nicosia, Cyprus.
Department of Mechanical and Manufacturing Engineering, University of Cyprus, Nicosia, Cyprus.
Front Chem. 2019 Feb 26;7:87. doi: 10.3389/fchem.2019.00087. eCollection 2019.
Advances in the technology and processing of flexible optical materials have paved the way toward the integration of semiconductor emitters and polymers into functional light emitting fabrics. Lead halide perovskite nanocrystals appear as highly suitable optical sensitizers for such polymer fiber emitters due to their ease of fabrication, versatile solution-processing and highly efficient, tunable, and narrow emission across the visible spectrum. A beneficial byproduct of the nanocrystal incorporation into the polymer matrix is that it provides a facile and low-cost method to chemically and structurally stabilize the perovskite nanocrystals under ambient conditions. Herein, we demonstrate two types of robust fiber composites based on electrospun hydrophobic poly(methyl methacrylate) (PMMA) or hydrophilic polyvinylpyrrolidone (PVP) fibrous membranes sensitized by green-emitting all-inorganic CsPbBr or hybrid organic-inorganic FAPbBr nanocrystals. We perform a systematic investigation on the influence of the nanocrystal-polymer relative content on the structural and optical properties of the fiber nanocomposites and we find that within a wide content range, the nanocrystals retain their narrow and high quantum yield emission upon incorporation into the polymer fibers. Quenching of the radiative recombination at the higher/lower bound of the nanocrystal:polymer mass ratio probed is discussed in terms of nanocrystal clustering/ligand desorption due to dilution effects, respectively. The nanocomposite's optical stability over an extended exposure in air and upon immersion in water is also discussed. The studies confirm the demonstration of robust and bright polymer-fiber emitters with promising applications in backlighting for LCD displays and textile-based light emitting devices.
柔性光学材料技术与加工方面的进展为将半导体发光体和聚合物集成到功能性发光织物中铺平了道路。卤化铅钙钛矿纳米晶体因其易于制备、通用的溶液加工以及在可见光谱范围内高效、可调谐且窄的发射特性,似乎是此类聚合物纤维发光体非常合适的光学敏化剂。将纳米晶体掺入聚合物基体的一个有益副产品是,它提供了一种简便且低成本的方法,可在环境条件下对钙钛矿纳米晶体进行化学和结构稳定化处理。在此,我们展示了两种基于静电纺丝的疏水性聚甲基丙烯酸甲酯(PMMA)或亲水性聚乙烯吡咯烷酮(PVP)纤维膜的坚固纤维复合材料,这些纤维膜由发出绿色光的全无机CsPbBr或有机 - 无机杂化FAPbBr纳米晶体敏化。我们对纳米晶体 - 聚合物相对含量对纤维纳米复合材料的结构和光学性质的影响进行了系统研究,并且发现,在很宽的含量范围内纳米晶体掺入聚合物纤维后仍保持其窄且高量子产率的发射。分别从由于稀释效应导致的纳米晶体聚集/配体解吸的角度讨论了在探测的纳米晶体:聚合物质量比的较高/较低界限处辐射复合的猝灭情况。还讨论了纳米复合材料在长时间暴露于空气中以及浸入水中后的光学稳定性。这些研究证实了坚固且明亮的聚合物纤维发光体的展示,其在液晶显示器背光和基于纺织品的发光器件方面具有广阔的应用前景。