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Fluoropolymer-Containing Opals and Inverse Opals by Melt-Shear Organization

机译:含氟聚合物的蛋白质和熔融剪切组织的逆蛋白石

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摘要

The preparation of highly ordered colloidal architectures has attracted significant attention and is a rapidly growing field for various applications, e.g., sensors, absorbers, and membranes. A promising technique for the preparation of elastomeric inverse opal films relies on tailored core/shell particle architectures and application of the so-called melt-shear organization technique. Within the present work, a convenient route for the preparation of core/shell particles featuring highly fluorinated shell materials as building blocks is described. As particle core materials, both organic or inorganic (SiO2) particles can be used as a template, followed by a semi-continuous stepwise emulsion polymerization for the synthesis of the soft fluoropolymer shell material. The use of functional monomers as shell-material offers the possibility to create opal and inverse opal films with striking optical properties according to Bragg's law of diffraction. Due to the presence of fluorinated moieties, the chemical resistance of the final opals and inverse opals is increased. The herein developed fluorine-containing particle-based films feature a low surface energy for the matrix material leading to good hydrophobic properties. Moreover, the low refractive index of the fluoropolymer shell compared to the core (or voids) led to excellent optical properties based on structural colors. The herein described fluoropolymer opals and inverse opals are expected to pave the way toward novel functional materials for application in fields of coatings and optical sensors.
机译:高度有序的胶体架构的制备引起了显着的关注,并且是各种应用的快速生长领域,例如传感器,吸收剂和膜。用于制备弹性体反蛋白膜的有希望的技术依赖于定制的芯/壳颗粒架构和所谓的熔融剪切组织技术的应用。在本作工作中,描述了一种方便的制备作为构建块作为构建块的高氟化壳材料的核/壳颗粒的便利途径。作为颗粒芯材料,有机或无机(SiO 2)颗粒可以用作模板,然后是半连续的逐步乳液聚合,用于合成软含氟聚合物壳材料。使用功能单体作为壳材料,可以根据布拉格的衍射定律创建具有引人注目的光学性质的蛋白石和反蛋白石膜的可能性。由于存在氟化部分,最终蛋白石和反蛋白化的耐化学性增加。本文显影的含氟颗粒基薄膜具有用于基质材料的低表面能,导致良好的疏水性质。此外,与芯(或空隙)相比,含氟聚合物壳的低折射率导致了基于结构颜色的优异的光学性质。预期本文所述的含氟聚合物蛋白石和逆蛋白石将铺平朝向新型功能材料,用于在涂层和光学传感器领域应用。

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