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Fabrication and characterization of tunable photonic crystals by filling silica nanoparticles into the PS opals

机译:通过将二氧化硅纳米粒子填充到PS蛋白石中来制造和表征可调谐光子晶体

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The self-assembly of monodispersed colloids into an ordered three-dimensional structure, i. e., an opal (colloidal crystal) structure, is routinely employed to fabricate photonic crystals. In this study, high-quality polystyrene (PS) colloidal crystals in large area were fabricated during 24 hours via the capillary-enhanced process. Then, the tunable photonic crystals were formed by incorporating silica nanoparticles of different concentration into the void space via a dipping process. According to Fick's Law, the interstitial space of opal could be completely filled. Thereby, the monodisperse spheres of opal will form core-shell structure. Moreover, increase of silica nanoparticle concentration will result in an increased refractive index of the opal film. The absorptive peak of pure opal is 445nm as measured in UV-Vis spectrum, and the absorptive peak of core-shell opal is 453nm, 463nm and 469nm for suspensions with different concentration of silica nanoparticles of 0.017, 0.122, and 0.244wt%, respectively. Therefore, by using this dipping process to fill the opal film with colloidal nanoparticles, the characteristic absorption wavelength for opal film can be fine-tuned more easily, efficiently and cost effectively than by traditional methods of constructing opal from monodispersed colloids of different diameter.
机译:单分散胶体的自组装成有序的三维结构,即。例如,蛋白石(胶体晶体)结构通常用于制造光子晶体。在这项研究中,通过毛细管增强工艺在24小时内大面积制造了高质量的聚苯乙烯(PS)胶体晶体。然后,通过浸渍工艺将不同浓度的二氧化硅纳米粒子掺入空隙空间中,从而形成可调谐光子晶体。根据菲克定律,蛋白石的间隙空间可以完全填充。由此,蛋白石的单分散球将形成核-壳结构。而且,二氧化硅纳米颗粒浓度的增加将导致蛋白石膜的折射率增加。在紫外-可见光谱中测得纯蛋白石的吸收峰为445nm,对于不同浓度的二氧化硅纳米粒子分别为0.017、0.122和0.244wt%的悬浮液,核壳蛋白石的吸收峰为453nm,463nm和469nm。 。因此,与通过不同直径的单分散胶体构造蛋白石的传统方法相比,通过这种浸渍工艺用胶体纳米颗粒填充蛋白石膜,可以更轻松,更有效,更经济地微调蛋白石膜的特征吸收波长。

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