H2020Индивидуална стипендия2015–2017

HOLES · Highly Ordered Light-manipulators by Self-assembly

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2015-03-01 → 2017-02-28
Финансиране от ЕС
183 455 €
Участници
1
Схема
MSCA-IF-EF-ST

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Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Highly Ordered Light-manipulators by Self-assembly

Photonic technologies rely on the controlled propagation of ‘photons’, i.e. the quantum of light. These have various advantages compared to devices using electronic charge carriers (electronic devices), the most important are speed and the fact that photons can intersect without interacting. As a consequence, data transmitted by light can travel longer distances, faster, and most often with considerably lower losses and interferences. Applications of photonics would, thus, be ubiquitous, including areas from everyday life to the most advanced science uses, i.e. from telecommunications, information processing, sensing, medicine, and the like. Unfortunately, the development of photonic technologies has hitherto been slow. One of the main reasons resides in the lack of industrially applicable methods to process materials of the required optical characteristics. So far, inorganic systems are selected for the fabrication of photonic crystals. Whilst they can exhibit high refractive indices - a number that describes how light propagates through that medium, it cannot be varied in a controlled way and is fixed for a given material. Therefore, in most cases many processing steps need to be changed when already one of the constituent of a multicomponent systems is varied, which is not an ideal situation from a technological point of view. Similar problems arise from more standard lithographic methods, which have traditionally been adopted for photonic structures manufacturing. They are difficult to be scaled to industrial level due to their high-cost and small patternable area. Therefore, a “photonic revolution” can be foreesen, if the development of easy-to-process materials and cost-effective, high-throughput processing methods for production of photonic elements is realised. Thereby, this is currently one of the hottest scientific topics from both scientific and social perspectives, as contributing to such development of photonics will generate knowledge, growth, services and more and better jobs that will deliver economic and social welfare. My project was designed to produce such a step change through the development of versatile, rapid, low cost, processing routes that allow efficient and controlled deposition of optical materials into photonic structures. I proposed to produce a step change in the photonics field through the employment of the Dynamic Templating Process, a solution-processing method, which exploits the self-assembly of water microdroplets to create microscale honeycombs in a polymer-based material of suitable optical properties. Due to these properties and the honeycomb-like morphology induced, these materials would present photonic properties, so that they would allow manipulating the flow of light. Hence, this project was designed to generate new knowledge as well as a new disruptive technology to lay the foundations for a next generation low-cost photonic devices that will contribute to strengthen Europe´s long-standing position in manufacturing.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The application of photonics in both everyday life and advanced science would be widespread, as they have a range of advantages as compared to electronics in many applications. However, the development of high-throughput photonic technologies has proven problematic, due to the absence of easily-scalable methods to process materials of the desired optical characteristics. My project addresses that problem by adopting a highly successful approach hat has been employed in (opto)electronics, which has led to the explosion of a new prolific scientific field, new technologies, and new products: the development of solution-based processing methods. Specifically, I propose to produce a step change in the photonics field through the employment of the Dynamic Templating Process (DTP), an elegant, fully solution-processing method, which exploits the self-assembly of water microdroplets, to create micro-honeycombs, i.e. 2D photonic crystals. As solution-processable material, I propose to use an organic:inorganic hybrid, which shows refractive indexes above 2. Then, I aim to create novel 2D hierarchical and 3D photonic structures based on thy hybrid honeycombs for optical field management. In the last stage I will transform the DTP into an industrially scalable process for photonic crystal and device manufacturing. Thereby, I propose an ambitious, multidisciplinary and self-consistent project, which encompasses the synthesis of novel materials, the development of microprocessing methods, the production and characterisation of a new class of photonic elements, and the development of industrial production processes. Hence, the project is designed to generate new knowledge as well as new disruptive technology, as it may lay the foundations for next generation photonic devices

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз