SPP 1839: Tailored Disorder - A science- and engineering-based approach to materials design for advanced photonic applications
SPP 1839: Tailored Disorder - A science- and engineering-based approach to materials design for advanced photonic applications
批准号:
255652081
负责人:
金额:
$0.0万
依托单位国家:
德国
项目类别:
Priority Programmes
财政年份:
2015
资助国家:
德国
项目状态:
已结题
起止时间:
2014-12-31 至 2022-12-31
中文摘要
SPP“定制无序-基于科学和工程的先进光子应用材料设计方法”研究了在几何和组成中故意引入不规则性的材料复合材料的光子特性。自然和人工优化的技术材料将根据基本科学问题和材料科学与工程的各种主题进行研究。利用来自生物系统的灵感、来自物理、化学方法的结果以及来自模拟的验证,SPP将能够设计出新颖的先进光子材料。这将最终导致为各种光子应用定制的器件,其性能取决于3D微纳米结构中的定制无序。最近的研究表明,严格的周期性在光子器件组件并不是唯一可能的方法,以达到所需的功能。控制无序程度可以产生不可预见的光学效应。因此,材料的定制无序可以为生产弹性材料提供设计指导,满足复杂环境和应用领域的多功能要求。然而,理论认识与现有材料和设备之间存在很大差距。到目前为止,在材料中定制足够大规模的无序的制造路线还很少。SPP的目标包括成功生产具有可预测光子特性的具有一定程度和类型的无序的材料,从而产生技术演示。到目前为止,已经确定的理论预测和实验实现的系统不仅在性能方面受到限制,而且对于任何广泛的技术实现来说也过于昂贵。因此,需要新的制造方法和合成路线,将科学理解与先进的工程策略相结合。主要目标之一是识别生物系统中的纳米结构,这些结构通过无序光子结构产生特殊的光学响应,例如蝴蝶和其他昆虫的翅膀。随后,光的选择性折射和衍射将在实验和理论上进行研究,重点是(无序)秩序和(红外)规则,确定人工的、受生物启发的纳米结构的蓝图。最后,最有希望的方法将通过基于实验室的纳米制造进行实验复制。为了推动纳米科学和技术的跨学科领域超越纯粹的观察,计划沿着以下路线进行研究,从(i)生物蓝图开始,然后是(ii)生物启发复制和(iii)最终确定人工合成/图案设计规则和优化光子纳米架构,并在设备概念中实现定制无序。
英文摘要
The SPP “Tailored disorder – A science- and engineering-based approach to materials design for advanced photonic applications” investigates photonic properties of materials composites with deliberately introduced irregularities in geometry and composition. Natural and artificially optimized technical materials will be studied with respect to fundamental scientific questions and various topics of material science and engineering. Using inspiration from biological systems, results from physics, chemical approaches and validation from simulation the SPP will enable the design of novel advanced photonic materials. This will ultimately lead to custom-made devices for a variety of photonic applications with a performance depending on tailored disorder within 3D micro- and nano-architectures.Recent research demonstrates that strict periodicity in photonic device components is not the only possible way to reach a desired functionality. A controlled degree of disorder can give rise to unforeseen optical effects. Tailored disorder in materials can therefore propose design guidance to produce resilient materials, fulfilling the requirements for multi-functionality in complex environments and application fields. However, there is a large gap between theoretical understanding and available materials and devices. Up to now, fabrication routes to tailor disorder at a sufficiently large scale in a material have been scarce. The objectives of the SPP comprise the successful production of materials containing a defined degree and type of disorder with predictable photonic properties resulting in technological demonstrators. Theoretically predicted and experimentally realized systems that have been identified so far are not only limited with respect to performance, but are also too expensive for any widespread technological implementation. Thus, new fabrication approaches and synthetic routes are required which merge scientific understanding with advanced engineering strategies.One of the major goals is the identification of nano-architectures in biological systems which produce a specialized optical response by means of disordered photonic structures e.g. in the wings of butterflies and other insects. The selective refraction and diffraction of light will subsequently be studied experimentally and theoretically with emphasis on (dis)order and (ir)regularity, identifying blueprints for artificial, bio-inspired nano-architectures. Finally, the most promising approaches will be experimentally replicated using lab-based nano-fabrication.To advance this interdisciplinary field of nano-science and –technology beyond pure observation, research along the following line is planned, starting with (i) biological blueprints followed by (ii) bio-inspired replication and (iii) ultimately identification of design rules for artificial synthesis/-patterning and optimization of photonic nano-architectures with tailored disorder to be implemented in device concepts.
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