FP6Обмен на изследователи2005–2009

GLOSS-EE · Glossy magazine quality colour E-Paper

6РП — Действия „Мария Кюри“

Период
2005-02-01 → 2009-01-31
Финансиране от ЕС
492 204 €
Участници
1
Схема
TOK

Линиите свързват координатора с партньорите.

Накратко на български

Квантови точки от индий и фосфор се разработват за създаване на по-ефективни дисплеи и температурни индикатори. Тези материали помагат за намаляване на загубите на светлина и подобряване на цветовото качество при LED източниците.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Final Activity Report Summary - GLOSS-EE (Glossy magazine quality colour e-paper)

The first project task was related to growth and assembly of nanoparticles for possible applications in displays. Quantum dots are potentially very useful materials for efficient displays and light sources because their optical properties can be tuned relatively easily during the manufacturing process. A protocol for synthesising InP quantum dots was developed. As being currently prepared InP quantum are barely luminescent owing to many surface defects. Hence coating with a shell material having a higher band gap was needed. Using a ZnS shell, luminescent quantum dots were made and characterised. Visual changes observed in the photoluminescence spectra of InP/ZnS quantum dots in the temperature range of 300 to 510 K were studied closely. As this effect might be of potential relevance in applications as indicator of the temperature of a surface, we investigated the origin of this colour change by performing temperature dependent photoluminescence studies. A procedure for conjugating commercial available InGaP nanocrystals with biomolecules was also developed. Fabrication of a silicon photodiode was achieved and of a protocol for performing a biological assay using the photodiode and quantum dots has been developed. The second project component was related to high and low refractive index materials with tuned optical properties to reduce light losses in displays and light emitting diode (LED) light sources. In achieving high efficiency displays and LED light sources it was crucial to use optical coupling and adhesive layers with the right index of refraction, adhesion and photo-thermal stability. Sol-gel formulations and processing techniques were developed for materials with a tuneable index of refraction. For low-index materials nano-porous materials and processing were developed with controlled pore size, surface and pore content. For high-index bonding layers, zirconium oxide nano-particles were used. Alternatively, a process using Ti acetylacetonate or Ti alkoxide was developed. The light scattering properties of the layers was tuned with a TiO2-SiO2 sol-gel material system where a controlled volume scattering and surface roughness could be achieved. Micro-structured high-index sol-gel coatings were demonstrated using embossing. The third project task was concerned with the realisation of new concept backlight displays using diffractive optics and photonic materials. Actual liquid crystal display systems presented a very low efficiency, of about 5 %, in the light management. Several optical layers absorbed most of the light produced by the lamps of the device and only a small portion of that arrived to the eyes of the user. A new idea was developed to improve the actual situation. If a diffraction grating was integrated in the lightguide that distributed the light all over the display, the main three colours, i.e. red, green and blue, of the source could be separated by the grating and addressed by a system of micro-lenses to the right pixels of the display. This could help avoid the use of light-wasting colour filters in front of the pixel matrix. Surface relief diffraction structures were designed and realised by holography in photo-resist material. The diffraction gratings were optically characterised and compared to the theoretical predictions. A proof of principle prototype backlight system consisting of a lightguide with a suitable diffraction grating and a micro-lens array was realised and characterised. An improved configuration was demonstrated, showing a highly efficient pattern of red-green-blue-green-red coloured pixels.

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

Цел на проекта

Electronic replacement of printed-paper, e-paper, will have drastic impact on the world we live in. Millions of sheets of printed papers in offices around the globe are consumed every day. It is believed that electronic devices for document reading will seriously reduce the load this imposes on our environment. Moreover, high quality e-paper enables the dream of having information distribution anytime, anywhere. Today's e-paper devices have very serious shortcomings. They can by far not reach the whiteness" and contrast of printed text on paper, and they cannot show colour images. This hampers the acceptance of e-paper in the market.Philips has identified that it is important to have a colour e-paper for increasing the dissemination of information. Therefore, a project team has started developing the technology for colour reflective displays. This team has identified gaps in their knowledge that have to be filled. In the fast changing world of information technology, it is important that these gaps are filled quickly. The objective of the ToK is to explore and develop new materials, processes and components for high quality colour e-paper.Three fellows are necessary to bring scientific know-how in the following areas:- Innovative ways of building nano-particle based e-paper displays using self-organizing assembly methods involving functional polymers.- Nanoporous materials offering a low refractive index and new ways to tune their optical properties need to be developed.- New diffractive optical components and photonic bandgap materials will be explored and the state of the art in optical telecommunication technology will be transferred into the new area of e-paper displays.Joining the scientific knowledge of the fellows with the application experience of the host will lead to a new colour e-paper display technology."

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз