PhoLED · Photonic nanostructures for Light-Emitting Devices.
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2015-09-01 → 2017-08-31
- EU contribution
- €158,122
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Photonic nanostructures for Light-Emitting Devices.
Aiming towards energy-efficient and environmentally friendly light sources, a major shift in artificial lighting is taking place driven by the development of highly efficient light-emitting diodes (LEDs). Nowadays, LEDs use a mature technology that can compete with traditional light sources due to the higher efficiencies, longer lifetimes, fast switching, robustness, and compact size that LEDs feature. It is foreseen that the widespread replacement of traditional light sources within the next 10-20 years will lead to a considerable reduction of the worldwide electricity consumption. In order to facilitate such a transition, LEDs must be integrated in many different applications. It is therefore necessary to attain full control over brightness, color and directionality of the light emitters. Luminescent materials based on rare earth ions play an increasingly important role in a variety of applications because of their various of emission color, typical spectral properties, high stability, etc. However, rare earth phosphors in the nanoscale even have much lower luminescent efficiency due to their low crystallinity and high density of surface defects. In the framework of PHOLED it has been demonstrated that the emission color and efficiency of thin layer made by rare-earth doped nanocrystals can be strongly modulated in tunable spectral ranges using optical resonators specifically designed to this end. The color coordinates of nanoparticles can be tuned from blue red with unprecedented precision. Key to the achievement herein reported is the careful analysis of the structural and optical properties of thin nanophosphor layers with the processing temperature in order to achieve efficient photoluminescence while preserving the transparency of the film. The results prove that the emission color of luminescent materials can be tuned by utilizing an external structure platform other than depending on the chemical management during the synthesis, which opened a new path for fundamental and applied research in solid-state lighting. The accomplishment of the idea present herein implies the consecution of impacts at the fundamental, technological, environmental, and economic level. Results attained within this project will provide significant advance in the development of versatile SSL devices of optimized efficiency, aiming to solve critical limitations that the current technology presents. Improved LEDs obtained within this project will accelerate the replacement of traditional lighting sources, reducing energy costs for lighting, greenhouse gases emission and eliminating the exposure to mercury found in fluorescent bulbs. The overall objectives of this project is to develop new optical materials and structures to improve the performance of standard phosphors devised for lighting applications. The strategy was the integration of novel optical nanostructures and emitters, such as colloidal quantum dots or nanophosphors, to yield the next generation of light-emitting devices in which full spectral and angular control over the emission properties will be possible. The main research was focused on exploring efficient nanophosphors and the preparation of optical nanostructures containing nanophosphors which will allow a precise control on the intensity, angular distribution and color quality of light emission. Results achieved within this project will provide significant advance both in the comprehension of fundamental phenomena as well as in the development of versatile solid-state lighting devices of optimized efficiency, aiming to overcome technical barriers and maximize performance.
Data: CORDIS, © European Union
Project objective
The PhoLED project seeks to largely surpass the optical performance of state-of-the-art light emitters devised for illumination applications and contribute to solve some of the main technical limitations that the current technology presents. This project aims at integrating novel optical nanostructures and emitters, such as colloidal quantum dots or nanophosphors, to yield the next generation of light-emitting devices in which full spectral and angular control over the emission properties will be possible. The approach focuses on the development of: i) new synthetic routes to achieve efficient nanophosphors, and ii) preparation and processing strategies, based on surface textures and colloidal scatterers, to attain large area optical nanostructures possessing photonic properties that will allow a precise control on the intensity, angular distribution and color quality of light emission. Results achieved within this project will provide significant advance both in the comprehension of fundamental phenomena as well as in the development of versatile solid-state lighting devices of optimized efficiency, aiming to overcome technical barriers and maximize performance. The project’s outcome is twofold: a substantial expansion of the preparation of optical nanostructures to control light-mater interaction, and the practical realization of nanostructured light-emitting devices with unprecedented properties.
Original text from CORDIS.
Participants
- AGENCIA ESTATAL CONSEJO SUPERIOR DE INVESTIGACIONES CIENTIFICAS · MadridCoordinatorSpain
Links
Data: CORDIS, © European Union
