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Impact of morphology and scale on the physical properties of periodic/quasiperiodic micro- and nano- structures

机译:形态和尺度对周期性/准周期性微观和纳米结构的物理性质的影响

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摘要

A central pillar of real-world engineering is controlled molding of different types of waves (such as optical and acoustic waves). The impact of these wave-molding devices is directly dependent on the level of wave control they enable. Recently, artificially structured metamaterials have emerged, offering unprecedented flexibility in manipulating waves. The design and fabrication of these metamaterials are keys to the next generation of real-world engineering. This thesis aims to integrate computer science, materials science, and physics to design novel metamaterials and functional devices for photonics and nanotechnology, and translate these advances into realworld applications. Parallel finite-difference time-domain (FDTD) and finite element analysis (FEA) programs are developed to investigate a wide range of problems, including optical micromanipulation of biological systems [1, 2], 2-pattern photonic crystals [3], integrated optical circuits on an optical chip [4], photonic quasicrystals with the most premier photonic properties to date [5], plasmonics [6], and structure-property correlation analysis [7], multiple-exposure interference lithography [8], and the world's first searchable database system for nanostructures [9].
机译:现实世界工程的中心支柱是控制不同类型的波(例如光波和声波)的成型。这些波浪成型设备的影响直接取决于它们使能的波浪控制水平。近年来,出现了人工结构的超材料,在操纵波时提供了前所未有的灵活性。这些超材料的设计和制造是下一代现实世界工程的关键。本文旨在整合计算机科学,材料科学和物理学,设计用于光子学和纳米技术的新型超材料和功能器件,并将这些进展转化为现实应用。开发了并行有限时域(FDTD)和有限元分析(FEA)程序,以研究广泛的问题,包括生物系统的光学微操纵[1,2],2图案光子晶体[3],集成光学芯片上的光学电路[4],迄今为止具有最主要光子特性的光子准晶体[5],等离激元[6]和结构特性相关分析[7],多重曝光干涉光刻[8],以及世界上第一个可搜索的纳米结构数据库系统[9]。

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