FP7Индивидуална стипендия2009–2010

SOLARPAT · Self-nanostructuring Polymer Solar Cells

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2009-04-01 → 2010-08-31
Финансиране от ЕС
154 102 €
Участници
1
Схема
MC-IIF

Линиите свързват координатора с партньорите.

Накратко на български

Органичните слънчеви клетки се анализират чрез влиянието на електродите върху поведението на частиците, наречени екситони. Това помага за разработването на по-ефективни устройства чрез използването на флуоресцентни полимерни материали.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Self-nanostructuring polymer solar cells

Light absorbed by photoactive organic material produces excitons. Here, we have theoretically shown that the radiative lifetime of excitons in a typical solar cell geometry can increase or decrease orders of magnitude depending on the orientation of the exciton or exciton molecule. The conducting electrodes that sandwich conventional solar cells form an asymmetric and non-ideal cavity, in which there is only a partial wave-guiding of light. It is well-known that the spontaneous-emission rates are changed for an atom within a metallic cavity, however until this project, there had not been a study of the spontaneous-emission rates between a perfect mirror and a semi-transparent thin-metal layer, which is the prototypical architecture of a solar device. In addition, we have investigated new design considerations for controlling exciton recombination. Sunlight is incident on and partially absorbed within the semi-transparent electrode and the exciton population in the active layer is governed by diffusion, absorption, and recombination. We model the performance of thin-film solar cells incorporating the effects of diffusion, accounting for partial sunlight reflections, and accounting for the partial transparency and finite conductivity of the upper electrode. The opaque electrode is modelled as an ideal mirror. Since in Schottky and bilayer-junction organic photovoltaic devices, this nanometre-scaled diffusion length is one of the limitations for achieving higher efficiency organic solar cells, our findings predict that high-efficiency devices may be achieved by employing fluorescent polymer materials in photovoltaic designs. Sunlight produces excitons in the fluorescent active material, which diffuse towards the lower opaque electrode. If excitons recombine, a photon is emitted. There are large differences in the exciton behaviour depending on exciton position and on the emission polarisation, and subsequently we observe appreciable changes in the exciton diffusion current. The lifetime associated with dipoles aligned in the plane of the solar device increases sharply near the opaque electrode. Moreover, the exciton lifetime varies orders of magnitude depending on its position within the thin film. To experimentally-verify our calculations of the radiative lifetime, we have worked towards achieving a high-quantum yield fluorescent material by separating rhodamine dye molecules with a polymer background. This approach yields a factor of 20 increase in the fluorescence quantum yield fluorescence, accompanied by a decrease in the dimer absorption. Further experiments are underway to incorporate this novel polymer into a solar device. In conclusion, we show that by controlling the spontaneous-emission rate for excitons generated between an ideal mirror and a semi-transparent thin semitransparent film, the exciton diffusivity can be enhanced by as much as a factor of five. In organic solar cells whose active material is fluorescent, there is significant potential for reducing recombination losses by employing nanostructures to inhibit spontaneous emission. This work provides an important calculation that may be used for characterising self-assembly and nanocrystal patterning in fluorescent polymer materials. By quantifying the primary influence of exciton or organic molecule alignment on solar devices, we provide a theoretical foundation for understanding self-assembled crystals in organic thin films. Moreover, our work may enable new diagnostic methods for studying the morphology of polymer films.

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

Цел на проекта

The participant’s research objective is to develop new and viable solar cell architectures in which self-assembled and light-induced nanostructures improve device manufacturing, construction, and operation. The participant, an optical applied physicist whose expertise is nonlinear dynamics, will be hosted by the ICFO-Institute of Photonic Sciences where she will join nanophotonics researchers trained in chemistry, material science, and physics. She will contribute the knowledge of numerical methods for analyzing pattern formation, self-assembling, and light scattering dynamics and will theoretically and experimentally investigate the sunlight absorption and exciton dynamics due to nanostructures. Among many mutually-beneficial long-term benefits of the participant’s involvement at ICFO is the encouragement of future collaborations between the Third country, the U.S., and European research groups. There is increasing environmental, commercial, and scientific interest in organic and polymer solar cells because the technology uses low-cost and biodegradable materials for producing electrical energy, however, challenges remain. In this research proposal, we summarize recent advances and general schemes for improving thin-film solar cells using nanostructures, largely from within the last 5 years. We describe what tools are not yet available and unresolved physical explanations accompanying demonstrated measurements. We cite examples of self-assembled thermally-annealed nanostructures that show promising results, as well as methods that we will develop for modeling and optimizing new solar cell designs. The research proposed here will focus on the designs for stable bulk heterojunction polymer solar cells, however, results from the investigations may also be relevant to other thin-film solar technology, and may contribute to future nanofabrication processes or methods of nano-characterization.

Оригинален текст от CORDIS (на английски).

Участници

  • FUNDACIO INSTITUT DE CIENCIES FOTONIQUES · CastelldefelsКоординаторИспания

Връзки

Данни: CORDIS, © Европейски съюз