H2020Индивидуална стипендия2021–2023

TADF-LDS · Visually Attractive Photovoltaic Panels without Efficiency Loss

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

Период
2021-09-01 → 2023-10-04
Финансиране от ЕС
224 934 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Слънчевите панели се подобряват чрез нови луминесцентни материали, които позволяват добавянето на цветове и графични дизайни върху тях. Това помага за по-лесното приемане на фотоволтаиците в архитектурата и домакинствата, без да се губи ефективност или да се увеличават разходите.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Visually Attractive Photovoltaic Panels without Efficiency Loss

Aesthetics of solar cells have become more important in recent years and academic, and industrial implementation of photovoltaics can be boosted by the implementation of PV modules free of aesthetic constraints. To date, however, this has always been accompanied by negative consequences on cost and performance. The proposed project involves two distinct and interrelated challenges and thereby aims to address the aesthetic constraints of PV panels that can limit the wide acceptance of PV panels in residential applications and solar-powered products. First, we design and synthesize a unique new class of lanthanide luminescent downshifting (LDS) based molecules, by fundamentally changing the spectral absorption range of sensitizer antennae ligands. We also emphasize that this new approach will also be applicable to organo-lanthanide emitters in other fields, such that our concept has the potential for a broad paradigm shift across other luminescence applications. Alongside this, we introduce a viable technical approach based on LDS materials toward fabricating brightly coloured, graphically designed, and aesthetically pleasing customizable solar panels in a practical system, without compromising efficiency and in a cost-effective way. For this, we have initially pioneered a method for fabricating stand-alone LDS films in any colours and designs and laminated these onto solar cells to give highly appealing appearance. A key advantage of our method is that coloured layers can be retrospectively added to the desired solar cells/panels, which gives high flexibility in terms of colour, design patterns, shape, and applications. Furthermore, the LDS films can in principle be simply replaced many times during the lifetime of a PV module. This enables the panel appearance to be updated, avoids complicating highly-optimised manufacturing processes, and avoids issues of dye bleaching over time, issues which have been barriers to LDS applications in the past. To meet these aims, the specific objectives of the project are achieved 1) Design, computational (DFT) screening, synthesis, structural and optical characterization of new TADF ligands and lanthanide complexes as a new class of efficient LDS materials. For ligand molecules, frontier molecular orbitals, singlet (S1) and triplet (T1) energies will be calculated to deduce the TADF characteristics. Synthetic protocols are developed for both ligands and lanthanide complexes. Photo-physical properties of the newly synthesized lanthanide emitters are investigated using UV-Vis absorption and steady-state and time-resolved photoluminescence (PL) spectroscopic measurements. 2) Protocols for optimized developing LDS films for solar panels to impart colour and designs in a cost-effective way. This involves printing of films and fixing films onto the the PV panels. The developments and progress in any technologies begin from academic research. New advancements in the PV industry start from new materials, the researchers and industry working on different aspects getting the opportunity to explore new devices. Precisely our project aims to develop a novel class of luminescent downshifting materials (LDS) and explore the much neglected potential of LDS materials in improving the aesthetic appearance of solar panels. The proposed developments in this project will lead to the implementation of a highly innovative technology in the PV market

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

Цел на проекта

Photovoltaic (PV) technology has proven to be the most promising, economic, and clean solution to the global energy crisis. Over the years, tremendous advancements have been accomplished in the solar PV industry in terms of installations, cost reductions and technological advancements. Crystalline silicon (c-Si) panels belong to the first-generation solar PV and hold ~ 95% share of worldwide PV production. The energy conversion efficiency of silicon solar cells in the lab reached a record value of 26.7% in 2017. An important factor affecting the efficiency of Si solar cells is the poor spectral response of Si below 450 nm. Luminescent Down-Shifting (LDS) is an efficient optical approach used for increasing PV device spectral response by converting high energy photons to lower energy photons. LDS can also be used to modify and enhance the visual appearance of solar panels for building-integrated PV applications. To date various luminescent materials like inorganic phosphors and glasses, colloidal QDs, organic dyes and organolanthanides have been studied as LDS layer in different PV devices. Organolanthanide complexes have proven to be attractive candidates to improve the EQE of solar cells compared to other LDS materials due to their uniquely large spectral shift of emission. Their major drawback to date however, is poor light harvesting in the 350 – 450 nm spectral region while simultaneously maintaining high PL quantum yield. To achieve a step change in performance of lanthanide complex LDS materials, we will implement for the first time ligands that exhibit thermally activated delayed fluorescence (TADF), since these may achieve close to 100% ligand to metal sensitization efficiency, even at near-UV and visible wavelengths. This unique method will extend the absorption range of Ln complexes (from <385 nm to <470 nm) with enhanced absorption coefficient, while achieving improved overall quantum yield of Ln complexes and hence overall improved EQE of PV cells.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз