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Polymer Coated Silicon Nanoparticles Synthesis for optical Applications

机译:聚合物涂覆硅纳米颗粒用于光学应用的合成

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Currently, silicon nanoparticles (SiNPs) are of great interest due to their potential applications in various fields such like optoelectronics, microelectronics, photonics, photovoltaics, chemical, and biologic sensors. SiNPs Become the most important and well-known semiconductor because Si-based devices have dominated microelectronics for many decades. Indeed, the production of smart SiNPs materials to enhance absorption and light scattering is currently the most convenient approach.Recently, plasmonic fractal-like structures have been determined to enhance photovoltaic device performances; indeed, through an efficient coupling of the incident light at different frequency bands into both the surface plasmon modes and the cavity modes, a broadband absorption enhancement can be accomplished.Silicon nanoparticles exhibit fluorescence deriving from Si quantum dot structures which are produced during chemical etching, and it can be synthesized with unique optical reflectivity spectra. These unique characteristics allow porous silicon to exhibit a signal that is affected in a expected way when exposed to environmental changes, presenting possibilities for the development of advanced functional systems that incorporate sensors for therapeutic functions or diagnostic.In order to prevent rapid degradation after administration and to increase their blood half life, biocompatible polymers coating was performed on silicon nanoparticles. Different type of biocompatible polymers (chitosan, polylactic acid, PMMA, or dextran,) can be used.However, several methods have been developed for the synthesis of silicon nanoparticles such as chemical etching, sol-gel technique, laser ablation, sputtering process; hot-wire synthesis, ball milling process, and microemulsion.The main objective of this research is to develop a new technique for coating or encapsulation of Nanoparticles to modify their surface properties by using different polymers. Furthermore, polymers are non-toxic, non-flammable, relatively inexpensive and recyclable.
机译:目前,由于它们在各种领域的潜在应用,如光电子,微电子,光子,光伏,化​​学和生物传感器,因此硅纳米颗粒(SINPS)具有很大的兴趣。 SINPS成为最重要和最着名的半导体,因为基于SI的设备已经占据了多十年的微电子。实际上,智能SINPS材料的生产提高了吸收和光散射是目前最方便的方法。因此,已经确定了等离子体形状的结构,以增强光伏器件性能;实际上,通过在不同频带处的入射光的有效耦合到表面等离子体模式和腔模式,可以实现宽带吸收增强。硅纳米粒子表现出从化学蚀刻产生的Si量子点结构中得出的荧光,它可以用独特的光学反射谱合成。这些独特的特性允许多孔硅表现出在暴露于环境变化的情况下以预期的方式影响的信号,呈现掺入治疗功能或诊断的传感器的先进功能系统的可能性。在给药后防止快速降解为了增加血液半衰期,在硅纳米颗粒上进行生物相容性聚合物涂层。可以使用不同类型的生物相容性聚合物(壳聚糖,聚乳酸,PMMA或葡聚糖)。然而,为了合成硅纳米颗粒,例如化学蚀刻,溶胶 - 凝胶技术,激光烧蚀,溅射工艺,已经开发了几种方法。热线合成,球磨过程和微乳液。本研究的主要目的是开发一种用于涂覆或封装纳米颗粒的新技术,通过使用不同的聚合物来改变它们的表面性质。此外,聚合物是无毒的,不易燃,相对便宜的和可回收的。

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