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http://hdl.handle.net/10362/184713| Título: | Transparent nature-based luminescent solar concentrator with NIR emission and integrated thermal sensing |
| Autor: | Correia, Sandra F. H. P. Falcão, Bruno Figueiredo, Gonçalo Vaz, Bárbara M. C. Contieri, Letícia S. Mesquita, Leonardo M. de Souza Almeida, Juliana Fradinho, Joana C. Pinto, Diana C. G. A. Fu, Lianshe André, Paulo S. Ventura, Sónia P. M. Ferreira, Rute A. S. Sencadas, Vitor |
| Palavras-chave: | Chemistry(all) Renewable Energy, Sustainability and the Environment Materials Science(all) SDG 7 - Affordable and Clean Energy |
| Data: | 20-Mar-2025 |
| Resumo: | The engineering of luminescent solar concentrators (LSCs) offers a way to turn windows into energy-generating units while maintaining transparency. Through UV/blue down-shifting materials to the red/near-infrared (NIR) spectral region, the performance of building integrated photovoltaics is maximized without compromising indoor light quality. The most efficient solutions are based on quantum dots, which raise environmental concerns. To address this, natural renewable materials, like bacteriochlorophyll (BChl) from phototrophic bacteria were used to fabricate an LSC prototype dispersed in a styrene-ethylene-butylene-styrene (SEBS) matrix. The LSCs emit in the red/NIR region with an emission quantum yield of ∼7%, demonstrating external photon efficiency and electrical device efficiency values of ∼1.0% and ∼0.04%, respectively. The thermal dependence of the BChl/SEBS emission is used to set two independent thermometric parameters based on the emission and the electrical power generated by the LSC edge-mounted photovoltaic cells with relative sensitivity values up to ∼2% °C−1, which is a remarkable performance. This prototype was scaled up for an active area of 0.1 m2, representing the first large-area LSC using nature-based red/NIR emission centers. |
| Descrição: | Funding Information: This work was developed within the scope of the projects CICECO – Aveiro Institute of Materials, UIDB/50011/2020 (https://doi.org/10.54499/UIDB/50011/2020), UIDP/50011/2020 (https://doi.org/10.54499/UIDP/50011/2020) and LA/P/0006/ 2020 (https://doi.org/10.54499/LA/P/0006/2020) and Instituto de Telecomunicações, UIDB/50008/2020 (https://doi.org/ 10.54499/UIDB/50008/2020), UIDP/50008/2020 (https://doi.org/ 10.54499/UIDP/50008/2020) and LA/P/0109/2020 (https:// doi.org/10.54499/LA/P/0109/2020), Applied Molecular Biosciences Unit – UCIBIO, UIDP/04378/2020 (https://doi.org/ 10.54499/UIDP/04378/2020) and UIDB/04378/2020 (https:// doi.org/10.54499/UIDB/04378/2020), Associate Laboratory Institute for Health and Bioeconomy – i4HB, LA/P/0140/2020 (https://doi.org/10.54499/LA/P/0140/2020), LAQV-Tecnologia e Processos Limpos (UID/QUI/50006/2019) and projects PLANETa (CENTRO-01-0145-FEDER-181242), and SOLPOWINS – Solar-Powered Smart Windows for Sustainable Buildings (PTDC/CTM-REF/4304/2020) financed by national funds through the FCT/MEC (PIDDAC), and when appropriate co-financed by FEDER under the PT2020 Partnership through European Regional Development Fund (ERDF) in the frame of Operational Competitiveness and Internationalization Programme (POCI). S. F. H. C. thanks FCT (2022.03740.CEECIND) and European Space Agency (ESA STAR AO 2-1790). B. M. C. V. and G. F. thank FCT for the doctoral grants (2022.13816.BD and 2023.00526.BDANA, respectively). Publisher Copyright: © 2025 The Royal Society of Chemistry. |
| Peer review: | yes |
| URI: | http://hdl.handle.net/10362/184713 |
| DOI: | https://doi.org/10.1039/d4ta08036j |
| ISSN: | 2050-7488 |
| Aparece nas colecções: | Home collection (FCT) |
Ficheiros deste registo:
| Ficheiro | Descrição | Tamanho | Formato | |
|---|---|---|---|---|
| _Eds._2025_..pdf | 1,86 MB | Adobe PDF | Ver/Abrir |
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