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首页> 外文期刊>Photonics and Nanostructures: Fundamentals and Applications >Basics of optical engineering - Analysis of environmental and quantum size effects on the optical characteristics of molecular crystalline nanofilms
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Basics of optical engineering - Analysis of environmental and quantum size effects on the optical characteristics of molecular crystalline nanofilms

机译:光学工程基础知识 - 对环境和量子尺寸对分子结晶纳米丝光学特性的影响分析

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摘要

The basis of modern optical engineering involves makes finding ways to design predefined optical (and in general - physical) properties of nanoscopic patterns. The boundary parameters of nano-patterns depend on (small) dimensions and the type of nanostructure substance, the external environment, as well as the form and the technical-technological of aspect of production. Fundamental properties of nano-structures can be drastically changed by changing these parameters. We have investigated the optical specificities of molecular dielectric crystal nanofilm under the influence of different confinement conditions. This paper presents a model of crystalline ultrathin molecular film and an analysis of dielectric, i.e. optical properties of these spatially much bounded structures - in their entirety. Using the two-time dependent Green's functions, the energy spectrum, the possible exciton states and their space distribution were determined and the dynamic permittivity was calculated. It was shown that the appearance of localized states in the boundary layers of the film depends on the thickness and the changing values of the system parameters in the boundary areas of the film. These localized states define the schedule and determine the number of resonant absorption peaks in the infrared region of the external electromagnetic radiation (EMR). Analytical analysis of the impact of the boundary parameters on the changes of the dielectric and optical properties of the nanofilm, as compared to the same properties of bulk samples with identical crystalline and chemical structure, is impossible. Thus, a software package (dubbed JOIG_S) has been developed and applied to perform the numerical analysis and plot graphic displays of the relation between microscopic (exciton) and macroscopic (dielectric and optical) properties as a function of the frequency of an external electromagnetic field (EMF), for a specified set of values of the boundary parameters. Optical, i.e. absorption and refraction properties of observed nanostructures demonstrate very narrow and strictly discrete characteristics. Characteristic resonant peaks appear in the dependence of the absorption index on the frequency of external EMF. All peaks fall into infrared region and indicate absorption of corresponding external EM frequencies. The number and distribution of these peaks depend on the number of layers in the film and the perturbation parameters, as a consequence of the quantum size and confinement effects. This proved that the outer environment of the film affects the given fundamental properties of a nano film, i.e. their choice/change directly controls the optical properties of the film. Such an approach could be considered as a kind of optical engineering.
机译:现代光学工程的基础是寻找方法来设计纳米级图案的预定义光学(以及通常的物理)特性。纳米图案的边界参数取决于(小)尺寸和纳米结构物质的类型、外部环境以及生产的形式和技术方面。改变这些参数可以极大地改变纳米结构的基本性质。我们研究了分子介电晶体纳米薄膜在不同约束条件下的光学特性。本文提出了晶体超薄分子膜的模型,并对这些空间多边界结构的整体介电特性,即光学特性进行了分析。利用两个时间相关的格林函数,确定了能量谱、可能的激子态及其空间分布,并计算了动态介电常数。结果表明,薄膜边界层中局域态的出现取决于薄膜边界层的厚度和系统参数的变化。这些局部化状态定义了时间表,并确定了外部电磁辐射(EMR)红外区域中共振吸收峰的数量。与具有相同晶体和化学结构的块状样品的相同性质相比,不可能分析边界参数对纳米薄膜介电和光学性质变化的影响。因此,已经开发并应用了一个软件包(称为JOIG_S),在一组指定的边界参数值下,对微观(激子)和宏观(介电和光学)特性之间的关系进行数值分析,并绘制图形显示,作为外部电磁场(EMF)频率的函数。光学特性,即观察到的纳米结构的吸收和折射特性显示出非常窄且严格离散的特性。特征共振峰出现在吸收指数与外部电动势频率的关系中。所有的峰都落在红外区,并指示相应的外部电磁频率的吸收。这些峰的数量和分布取决于薄膜中的层数和微扰参数,这是量子尺寸和限制效应的结果。这证明了薄膜的外部环境会影响纳米薄膜的基本性质,即其选择/变化直接控制薄膜的光学性质。这种方法可视为一种光学工程。

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