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CDI-Type I: Computer Aided Design of Nanostructured Optical Materials

CDI-Type I: Computer Aided Design of Nanostructured Optical Materials
CDI-I 型:纳米结构光学材料的计算机辅助设计
批准号:
0941537
负责人:
Gary Meyer
金额:
$67.26万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-10-01 至 2013-09-30

项目摘要

项目成果

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中文摘要
翻译
技术总结该奖项是根据提交给Cyberable Discovery and Innovation倡议的提案颁发的。该奖项支持开发计算工具的研究,以研究光与纳米结构光学材料(也称为光子晶体)的相互作用。这些工具将成为计算机辅助设计系统的一部分,可用于创建新的单个光子晶体和包含光子晶体的新表面涂层。开发将由设计和制造纳米结构材料的社区的需求指导。该系统将通过使用它来创建具有特定光学特性的光子晶体来进行评估。光如何与纳米结构光学材料相互作用的研究将导致对构建系统的复杂性的理解。光子晶体的周期性布局和微小的尺寸使得光子晶体在几何上变得复杂。这种几何复杂性导致光学复杂性,因为必须考虑光的全波模型,并且必须考虑衍射效应。最后,三个明显不同的物理尺度必须仔细建模,从单个光子晶体的结构,到小体积表面涂层的组成,再到覆盖有表面涂层的小物体的尺度。计算思维将用于确定系统的结构和设计系统内的各个模块。一个有限差分时域技术将被用来解决物理光学问题的一个单独的光子晶体,光线跟踪方法将被用来执行几何光学计算的表面涂层,包含光子晶体,和计算机图形渲染技术将被用来描绘的颜色外观的表面涂层时,应用到一个三维物体。目前PC图形卡上的强大图形处理器将用于加速时域有限差分、光线跟踪和渲染算法。新的数值解技术将被探索,以提高物理光学和几何光学模拟的性能。PI将创建一个金属光子晶体,将提高白炽灯泡的效率。可以开发其他新颖的热光伏和等离子体光子晶体。随着以有趣的新方式反射光线的新表面涂层的出现,PI计划扩展各种可能的工业和建筑设计。非技术总结该奖项是根据提交给Cyberable Discovery and Innovation倡议的提案颁发的。本计画针对具有技术相关性的电子与光子材料科学领域的基础研究议题。一个包括计算机科学家,材料研究员和数学家在内的跨学科研究团队将开发计算工具来设计纳米结构光学材料或光子晶体。计算工具将能够精确计算光如何与光子晶体相互作用,光子晶体是被构造成具有与光相互作用以导致特定光学特性的周期性的材料,例如不通过晶体传输的特定频率的光。PI将开发的计算工具将使计算机辅助设计具有特定特性的光子晶体成为可能。作为对计算工具的测试,PI计划创造一种金属光子晶体,以提高白炽灯泡的效率。PI还将开发新的教学材料,使光子晶体的原理向公众开放。
英文摘要
TECHNICAL SUMMARYThis award is made on a proposal submitted to the Cyberenabled Discovery and Innovation initiative. This award supports research to develop computational tools to study the interaction of light with nanostructured optical materials, also known as photonic crystals. These tools will be part of a computer aided design system that can be used to create new individual photonic crystals and new surface coatings that contain photonic crystals. Development will be guided by the needs of the community that designs and fabricates nanostructured materials. The system will be evaluated by using it to create a photonic crystal with specific optical properties. The investigation of how light interacts with nanostructured optical materials will lead to an understanding of complexity in a built system. The periodic layout and minute size of the constituent building blocks makes a photonic crystal geometrically complex. This geometric complexity leads to optical complexity because the full wave model of light must be taken into account, and diffraction effects must be considered. Finally, three distinctly different physical scales must be carefully modeled, from the structure of an individual photonic crystal, to the composition of a small volume of surface coating, to the scale of a small object covered with the surface coating. Computational thinking will be used to determine the structure of the system and to design individual modules within the system. A finite difference time domain technique will be used to solve physical optics problems for an individual photonic crystal, a ray tracing approach will be employed to perform geometric optics calculations for a surface coating that contains photonic crystals, and computer graphics rendering techniques will be utilized to depict the color appearance of the surface coating when applied to a three dimensional object. The powerful graphics processors available today on PC graphics cards will be employed to accelerate the finite difference time domain, ray tracing, and rendering algorithms. Novel numerical solution techniques will be explored to improve the performance of both the physical optics and geometric optics simulations.The PIs will create a metallic photonic crystal that will improve the efficiency of incandescent light bulbs. Other novel thermophotovoltaic and plasmonic photonic crystals may be developed. As new surface coatings that reflect light in interesting new ways become available, the PIs plan to extend a variety of possible industrial and architectural designs.NONTECHNICAL SUMMARYThis award is made on a proposal submitted to the Cyberenabled Discovery and Innovation initiative. This project addresses fundamental research issues in a topical area of electronic and photonic materials science having technological relevance. An interdisciplinary research team that includes a computer scientist, a materials researcher, and a mathematician will develop computational tools to design nanostructured optical materials, or photonic crystals. The computational tools will enable accurate calculations of how light interacts with photonic crystals which are materials that are structured to have a periodicity that interacts with light to lead to specific optical properties, such as particular frequencies of light which are not transmitted though the crystal. The computational tools that the PIs will develop will enable computer assisted design of photonic crystals with specific properties. As a test of the computational tools, the PIs plan to create a metallic photonic crystal that will improve the efficiency of incandescent light bulbs. The PIs will also develop novel instructional materials to make the principles of photonic crystals accessible to the general public.
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Level of Detail Selection Using a Perceptual Error Metric
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