Blue-PeLEDs · Efficient and Stable Blue Quasi-2D Halide Perovskite Light-Emitting Diodes
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2020-09-01 → 2022-08-31
- EU contribution
- €203,852
- Participants
- 1
- Scheme
- MSCA-IF
Lines connect the coordinator with its partners.
Results in brief
Efficient and Stable Blue Quasi-2D Halide Perovskite Light-Emitting Diodes
Light-emitting diode (LED) refers to a light source which has a longer lifetime, emit less heating, and use less electricity consumption as compared to both incandescent bulb and other light sources. When red, green, and blue LED all combine then they produce a white light source, which function as an alternative energy-saving white light source which we all are using in our daily life e.g., mobile backlight, home light, car headlights, and mobile and TV display. However, the existing commercial LED technologies typically rely on high temperature and high vacuum manufacturing processes which increase the fabrication and equipment costs. Therefore, a new class of materials-metal halide perovskite-have been shown great potential for green and red LEDs which can be cheaper for lighting and displays technology. But the poor device efficiency and colour stability i.e., during device operation, the emission colour of the blue LED shifts in the green spectral region which leads to poor device performance. The project has partially achieved its objectives and milestones for the period. This project includes three objectives, from materials to films and device fabrication, which are shown as follows- • To synthesize novel quasi-2D perovskites for blue electroluminescence (EL) with excellent optoelectronic properties. We have designed and synthesized a series of efficient and stable quasi-2D perovskite emitters by optimizing the organic spacer cations and employing mixing of the short ligand group to stabilize the colour stability. The work is under investigation for the design of quasi-2D perovskite through short chain ligand to enhance the colour stability and device performance. Moreover, we have found that the use of a small amount of organic diammonium halide group can lead to the formation of colour-stable perovskite for blue emission. Based on such new materials, we have developed blue PeLEDs with excellent colour stability and reasonable device performance. • To deposit high-quality quasi-2D perovskite films. We have obtained a series of high-quality quasi-2D perovskite films by controlling the ratio of long chain and short chain ligand and surface defects passivation with metal doping. We also used the anti-solvent method to get high-quality perovskite films. However, the anti-solvent treatment does not help to maintain the peak position of the blue emission. To resolve this, we used a co-solvent approach to deposit high-quality perovskite thin film, and the overall emission properties are improved. • To fabricate efficient and stable blue PeLEDs beyond the state-of-the-art. We have fabricated a number of efficient and colour-stable blue PeLEDs based on p-i-n device architectures. We have also achieved blue PeLEDs with 7.7% EQE and 1484 cd/m2. Furthermore, we have carried out device physics studies on blue emissive PeLEDs and found that the EL emission peak does not shift with the voltage scan.
Data: CORDIS, © European Union
Project objective
Within eight years, metal halide perovskite materials become a new class of semiconducting materials for optoelectronic device application. Their unique and attractive optoelectronic properties, e.g., high crystallinity, low-cost, solution processable with large area deposition, direct band gap nature, low defect density, high color purity (narrow PL emission), tunable optical bandgap, long diffusion length, and balance and high charge carrier mobility. These properties make them attractive and potential candidates for light emitting diodes (LEDs) also. The green and red emissive perovskite-based LEDs efficiency reached ~10%, which is equal to the organic light emitting diodes (OLEDs) at lab scale. But still, blue emissive PeLED efficiency is lower as compared to green and red PeLEDs. The poor stability, poor charge balance, and low photoluminescent are major problems to limit blue PeLED efficinecy. In this proposal, I aims to address these challenges and demonstrate efficient and stable blue PeLED. The research work will be organized according to the following key objectives. 1) Design of blue emissive quasi 2D perovskite material by first-principles calculation (with the support of host organization), b) Deposition of high quality and pinhole-free blue quasi 2D thin film by using various deposition method and their characterization, and c) Fabrication of efficient and stable blue emissive quasi 2D PeLED beyond state of the art, by using device engineering and device physics investigation. This project provides basic scientific knowledge of quasi 2D perovskite materials for blue emissive PeLEDs. The expected results of this project are bandgap engineering of quasi 2D perovskite materials for blue emission with good optoelectronic properties, efficient and stable blue PeLED. Also, I will learn the synthesis of quasi 2D materials from the host organization that will be improved my interdisciplinary knowledge and research skills. The efficient blue PeLED is us
Original text from CORDIS.
Participants
- LINKOPINGS UNIVERSITET · LinkopingCoordinatorSweden
Links
Data: CORDIS, © European Union
