H2020Докторантска мрежа2018–2022

TADFlife · Using the smart matrix approach to enhance TADF-OLED efficiency and lifetime

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

Период
2018-10-01 → 2022-12-31
Финансиране от ЕС
3 942 037 €
Участници
21
Схема
MSCA-ITN

Линиите свързват координатора с партньорите.

Накратко на български

Ново поколение OLED диоди с термично активирана забавена флуресценция (TADF) се изследват за подобряване на ефективността и живота на сините пиксели. Това би направило производството на екрани по-евтино и устойчиво, тъй като не изисква скъпи и редки метали като иридий и платина.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Using the smart matrix approach to enhance TADF-OLED efficiency and lifetime

Organic light emitting diodes, OLEDs, are now the must-have displays in mobile phones, televisions and medical displays. OLED has introduced such innovations as formable, ‘wrap round’ phone displays, fully flexible displays, ultrahigh resolution 4K, expanded colour gamut and high dynamic range displays. According to IDTechEx4, the plastic and flexible AMOLED display market will grow to $16bn by 2020 and the OLED lighting market will reach $1.9bn by 2025. But, all these displays are still based on fluorescence, not phosphorescence blue emitters, which are 75% less efficient. The simple fact is, that after more than 10 years of development, no long lifetime, stable blue phosphorescent emitter has been demonstrated to meet commercial performance targets. The cost of using metals such as Ir and Pt in emitters is also still a major concern, severely limiting the impact of OLED lighting. However, a new generation of OLED emitter has emerged, based on thermally activated delayed fluorescence (TADF). Like phosphorescence, TADF is a 100% efficient mechanism for converting triplet states into emissive singlet excited state, thereby enabling 100% internal quantum efficiency. Recent rapid advances have shown that deep blue emission with external quantum efficiency (EQE) above 22% is possible, and coupled with enhanced out-coupling through self-orientation of emitter molecules, combined with low refractive index transport layers can boost EQE above 40%. This creates a step change for OLEDs. Displays could be manufactured with just blue pixels, with red and green generated by down converting phosphors. This would greatly simplify panel fabrication, increasing panel yield and driving down cost. TADF emitters do not consume scarce precious metal resources. Thus, if Europe can dominate the blue TADF materials sector, it can retain an extremely strong position in the displays, lighting and all OLED applications industries regardless of where panels are manufactured. At present, the lifetime of TADF devices do not reach commercial targets. To adress this, we used a comprehensive approach, embracing synthesis with spectroscopy guided by quantum chemistry, out-coupling analysis, electrical and trap characterisation, detailed device physics and simulation. From this holistic approach, and introducing the concept of the ‘smart matrix’ to OLED devices, we aimed to maximise TADF device lifetime without compromising device performance. Because this requires a multitude of skill sets and disciplines to achieve, it is the ideal project for a MCSA-ITN, where the cohort of ESRs working closely together can solve these problems whilst at the same time learning critical skills, techniques and training, based around this common, industrially relevant scientific question. Being provided with unique scientific and professional skills, the highly trained TADFlife ESRs will make a direct contribution to the European players. This is an important economical factor as Europe is in direct competition with East Asia in the highly competitive field of organic electronics. The objectives of project TADFlife are therefore -to combine the leading European academic and industrial expertise in synthesis, quantum chemistry, spectrosco-py, photophysics, device physics, simulation and technology to elucidate the simple, yet profound question of how to make efficient and long-lived TADF OLEDs, especially with deep blue emission. We will collectively develop models to identify the causes of poor lifetimes and from this eradicate these causes. -to meet the demand for a new generation of highly mobile cross-disciplinary chemists, physicists and materials scientists for growing industries, qualified in the area of OLED innovation, research and development. They will have a distinctive training experience combining both academic and industrial work experience in Europe with unique experiences gained by secondments in leading East Asian and American laboratories. Their accumulated training can be transferred to other classes of functional materials and electronic or photonic devices, thus con-tributing to creating a much needed broad and versatile European work force.

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

Цел на проекта

The European Training Network TADFlife will train a cohort of young PhD scientists within a multidisciplinary research program conceived from a simple industrial need, high performance blue OLEDs which also have long lifetime. This is not an easy problem to solve, as although OLEDs are now ubiquitous in phone and TV displays, the blue pixels still operate far below the performance and efficiency of the red and green to achieve acceptable lifetime. TADFlife will follow a new approach to solve this problem using the latest generation of OLED materials, thermally activated delayed fluorescent (TADF) emitters. Through a device simulation development program, which incorporates a high degree of basic photophysics input, predictive models of TADFOLED performance and lifetime will be built and used to design new TADF emitters and hosts which overcome the degradation pathways identified from the model predictions. These new materials will then be synthesised. By introducing the concept of the smart matrix, the complex guest host interactions of TADF materials will be included and used to optimise emitter orientation to maximise light out-coupling from devices. Quantum chemistry will use the photophysics results to direct new materials design in tandem with the model predictions. Taking this dual approach, we believe will lead to solutions so far unobtainable for OLEDs. This highly interlinked program gives a fantastic opportunity for the brightest young chemists, spectroscopists, theoreticians and device physicists to work together, learn complimentary skills that will be in high demand from European OLED industries. Leading experts will give courses on core scientific skills along with soft skills and international secondments will be offered, all to properly prepare them for their future careers. They will be part of a network answering a real industrial need and help to secure the future of our European OLED industries in the global OLED materials arena.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз