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Efficient upconversion polymer-inorganic nanocomposite thin film emitters prepared by the double beam matrix assisted pulsed laser evaporation (DB-MAPLE)

机译:通过双束矩阵辅助脉冲激光蒸发(DB-MAPLE)制备的高效上转换聚合物-无机纳米复合薄膜发射器

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We report on fabrication and investigation of optical and morphological properties of highly efficient (a quantum yield of 1%) upconversion polymer-inorganic nanocomposite thin film emitters prepared by the new technique of double beam matrix assisted pulsed laser evaporation (DB-MAPLE). Polymer poly(methyl methacrylate) (PMMA) host was evaporated on a silicon substrate using a 1064-nm pulsed laser beam using a target made of frozen (to the temperature of liquid nitrogen) solution of PMMA in chlorobenzene. Concurrently, the second 532-nm pulsed beam from the same laser was used to impregnate the polymer host with the inorganic nanoparticulate made of the rare earth upconversion compounds NaYF_4: Yb~(3+), Er~(3+), NaYF_4: Yb~(3+), Ho~(3+), and NaYF_4: Yb~(3+), Tm~(3+). The compounds were initially synthesized using the wet process, baked, and compressed in solid pellet targets. The proposed DB-MAPLE method has the advantage of making highly homogeneous nanocomposite films with precise control of the doping rate due to the optimized overlapping of the plumes produced by the ablation of the organic and inorganic target with the infrared and visible laser beams respectively. X-ray diffraction, electron and atomic force microscopy, and optical fluorescence spectroscopy indicated that the inorganic nanoparticulate preserved its crystalline structure and upconversion properties (strong emission in green, red, and blue bands upon illumination with 980-nm laser diode) after being transferred from the target in the polymer nanocomposite film. The produced films can be used in applications varying from the efficiency enhancement of the photovoltaic cells, optical sensors and biomarkers to anti-counterfeit labels.
机译:我们报告了通过双束矩阵辅助脉冲激光蒸发新技术(DB-MAPLE)制备的高效(量子产率为1%)高效上转换聚合物-无机纳米复合薄膜发射器的光学和形态学特性的研究和研究。使用由PMMA在氯苯中冷冻(至液氮温度)的溶液制成的靶,使用1064-nm脉冲激光束在硅基板上蒸发聚合物聚(甲基丙烯酸甲酯)(PMMA)主体。同时,来自同一激光器的第二个532 nm脉冲光束用于将聚合物主体浸渍由稀土上转换化合物NaYF_4:Yb〜(3 +),Er〜(3 +),NaYF_4:Yb制成的无机纳米颗粒〜(3 +),Ho〜(3+)和NaYF_4:Yb〜(3 +),Tm〜(3+)。首先使用湿法合成这些化合物,然后烘烤并压成固体小球靶。所提出的DB-MAPLE方法的优点在于,由于有机和无机靶材分别通过红外和可见激光烧蚀产生的羽流的优化重叠,因此可以制造出高度均匀的纳米复合膜,并且可以精确地控制掺杂速率。 X射线衍射,电子和原子力显微镜以及光学荧光光谱表明,转移后,无机纳米颗粒保留了其晶体结构和上转换特性(在用980 nm激光二极管照射时,在绿色,红色和蓝色带中有较强的发射)。聚合物纳米复合膜中的靶材。所生产的薄膜可用于从提高光伏电池,光学传感器和生物标记的效率到防伪标记的各种应用中。

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