SYNABCO · Synthesis and Application of Block Copolymers for Interfacial Stability in Organic Solar Cells
7РП — „Хора“ (Действия „Мария Кюри“)
- Период
- 2011-09-01 → 2013-08-31
- Финансиране от ЕС
- 209 093 €
- Участници
- 1
- Схема
- MC-IEF
Линиите свързват координатора с партньорите.
Накратко на български
Органичните слънчеви клетки се подобряват чрез създаване на нови блок-кополимери, които стабилизират активните материали в тях. Това помага за увеличаване на ефективността и издръжливостта на евтини и гъвкави панели, които са по-достъпни от силициевите.
Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.
Резултати накратко
Synthesis and Application of Block Copolymers for Interfacial Stability in Organic Solar Cells
Today, solar cells based on silicon are approximately 99 % of the global production of photovoltaic cells. However, present-day silicon technology has some disadvantages: purification processes are extremely expensive and silicon availability is limited due to its extensive use in the field of microelectronics. Consequently, the production cost of silicon solar panels is too high to be economically viable for every person worldwide. This is the major motivation for the development of organic photovoltaic devices (OPVs, also known as organic solar cells, OSCs), which exhibit advantages such as low cost, high device flexibility, and cheap fabrication from relatively abundant materials.1 OSCs can be produced into large roll-to-roll films (Figure 1). Figure 1. Belectric OPV’s light weight and semi-transparent OSCs; and a laptop bag. The inherent problems with OSC technology, however, are the stability (and therefore lifetime) and the relatively low efficiency (of converting the sun’s energy into electricity). SYNABCO’s objectives were to primarily address the former, to produce OSC devices with significantly longer lifetimes than the current 3 to 5 year estimates, through the design and fabrication of completely novel block copolymers. These block copolymers were designed to improve the stability of the devices through the use of low energy equilibrium structures which hold the photoactive materials in place. Concomitantly, the aim was to increase the power conversion efficiencies of the devices through more intimate contact of the individual components in the solar cells. Two different libraries of block copolymers have been designed and synthesised to this end. Firstly, a family of poly(3-hexylthiophene)-block-poly(ethylene oxide) (P3HT-b-PEO) polymers was successfully fabricated by ‘Steglich esterification’ between P3HT-OH and PEO-COOH.2 The absence of metal contaminants in all of the copolymers has been further confirmed by SEM-EDXA. This is vital for the use of such material in an OSC device, where metal contaminants are well known to destroy device performance. Another, different, family of diblock copolymers, to be disclosed following appropriate IP protection, were simultaneously prepared, this time via click chemistry. X-ray scattering experiments have been recently performed on all of the polymers synthesised and the data analysis is currently underway. The phase diagram of both libraries of materials will be constructed in due course. The materials are currently under investigation at collaborating company, Belectric OPV, and the University of Pau, to identify the effect of SYNABCO’s new polymers on lifetime and efficiency in real OSC devices. SYNABCO scientific results are predicted to contribute to both European excellence and competiveness by the development of more stable and more efficient OSCs and OSC-based devices. The results already obtained, and currently being generated, are expected to lead to a number of publications and one patent. SYNABCO IP will remain within the EU and thus any commercial products that arise from the results generated by SYNABCO will directly contribute to the competitiveness of the EU. The results of SYNABCO have been disseminated to researchers at Belectric OPV GmbH and members of a multinational Marie Curie ITN, ESTABLIS, working on the stability of OSCs. Now, these researchers are studying the role of our materials. Clearly, the more stable and more efficient OSCs that SYNABCO has produced benefits Belectric OPV directly by enabling them to capture an increased share of the OSC market. References: 1. C. J. Brabec and J. R. Durrant, MRS Bull. 2008, 33, 670. 2. H. Erothu et al., Polymer Chemistry, 2013, 4, 3652.
Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз
Цел на проекта
SYNABCO will increase the efficiency and lifetime of organic solar cells (OSCs) by creating a highly original and industrially viable polymer layer which will bind critical components together within the device. Finding an inexpensive, clean and completely renewable energy source is the most pressing challenge of current times. OSCs offer superb potential to meet this challenge but are currently not able to do so because they are inefficient and lack long term stability. It is critical that the technological break-through required to bring solar energy to every household across the world is explored while we are still in a position to do so. The scientific goal of SYNABCO is to provide just such a step-change technology platform. SYNABCOs multidisciplinary solution will exploit polymer nanotechnology and so although it will be ‘smart’ it will also be cheap and readily scaleable. Moreover, as it will be developed in concert with Konarka, the largest manufacturer of OSCs in the world, it will be immediately applicable in a global marketplace. The IP, papers and seminars that result from SYNABCO will also help maintain the EU as a leading centre for both academic and industrial research into OSCs. SYNABCO will also provide a unique training opportunity to develop a highly skilled fellow with broad OSC-relevant scientific skill and knowledge sets. The SYNABCO fellow will additionally receive training in a broad range of complementary skills. The training, skills and knowledge base with which SYNABCO will imbue the fellow will ensure that upon successfully completing the project he will be capable of becoming a leading research figure in OSCs within the EU. The ERA will thus reap considerable benefit from the development of an independent and mature researcher with a truly transnational background who will be able to contribute a significant and long term research effort into a pivotal area of research in which it is vital that the EU remains at the forefront.""
Оригинален текст от CORDIS (на английски).
Участници
- ASTON UNIVERSITY · BirminghamКоординаторОбединеното кралство
Връзки
Данни: CORDIS, © Европейски съюз
