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Inorganic-Polymer Nanocomposites for Optical Applications

机译:用于光学应用的无机 - 聚合物纳米复合材料

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The combination of organic and inorganic materials forms unique composites with properties that neither of the two components provides. Such functional materials are considered innovative advanced materials that enable applications in many fields, including optics, electronics, separation membranes, protective coatings, catalysis, sensors, biotechnology, and others. The challenge of incorporating inorganic particles into an organic matrix still remains today, especially for nanoparticles, due to the difficulties in their dispersion, de-agglomeration and surface modification. NanoGram has pioneered a nanomaterials synthesis technology based on laser pyrolysis process to produce a wide range of crystalline nanomaterials including complex metal oxides, nitrides and sulfides and with precisely controlled compositions, crystal structure, particle size and size distributions. In this paper we will present some examples of nanocomposites prepared using different polymer host materials and phase-pure rutile TiO{sub}2. The inorganic component can be dispersed at higher 50 weight percent into the polymer matrix. We have demonstrated a 0.2-0.3 increase of refractive index in the composite over that of host polymer while maintaining high optical transparency. These nanocomposites can be used in a range of applications or optical devices, such as planar waveguides, flat panel displays, optical sensors, high-brightness LEDs, diffraction gratings and optical data storage. Experimental data on TiO{sub}2 nanoparticle characterization, dispersion technique, surface modification and will be presented and nanocomposite properties discussed.
机译:有机和无机材料的组合形成独特的复合材料,其具有两个组件都不提供的性质。这种功能材料被认为是创新的先进材料,使许多领域的应用能够,包括光学,电子,分离膜,保护涂层,催化,传感器,生物技术等。将无机颗粒掺入有机基质中的挑战仍然是今天,特别是对于纳米颗粒,由于它们的分散,去聚凝聚和表面改性难以。纳米图已基于激光热解过程开创了纳米材料合成技术,以产生宽范围的结晶纳米材料,包括复合金属氧化物,氮化物和硫化物,并具有精确控制的组合物,晶体结构,粒度和尺寸分布。在本文中,我们将介绍使用不同聚合物主体材料和相纯金红石TiO {Sub} 2制备的纳米复合材料的一些实例。无机组分可以将50重量%的50重量%分散到聚合物基质中。在保持高光学透明度的同时,我们已经展示了0.2-0.3在复合材料中折射率增加。这些纳米复合材料可用于一系列应用或光学装置,例如平面波导,平板显示器,光学传感器,高亮度LED,衍射光栅和光学数据存储器。 TiO {Sub} 2纳米粒子表征,分散技术,表面改性的实验数据和讨论的纳米复合材料。

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