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Adjusting optical and fluorescent properties of quantum dots: Moving towards best optical heat-rejecting materials.

Authors :
Garshasbi, Samira
Huang, Shujuan
Valenta, Jan
Santamouris, Mat
Source :
Solar Energy. May2022, Vol. 238, p272-279. 8p.
Publication Year :
2022

Abstract

• A computational model was developed to study the impact of optical and fluorescent properties on fluorescent cooling potential. • The relation between solar reflection and PL-effect as complementary optical heat rejecting mechanisms was studied. • The highest theoretical fluorescent cooling potential for visible and NIR-emitting fluorescent materials was estimated. Quantum dots (QDs) coatings have recently attracted attentions as novel nano-scale fluorescent cooling materials with adjustable thermo-optical properties for urban overheating mitigation application. In this paper, a mathematical method for the prediction of impact of optical and fluorescent properties (i.e. absorption edge wavelength (λ AE) and quantum yield (QY)) on fluorescent cooling indicators including re-emitted energy (Q PL), effective solar reflection (ESR), and PL-related surface temperature reduction was proposed. The experimental thermal evaluation testing on three PbS QDs sample with different fluorescent properties and their corresponding non-fluorescent samples was performed to assess the accuracy of the proposed predictive model and evaluate the impact of fluorescent/optical properties on their cooling potential. The validated model was then used to optimize the fluorescent cooling potential for QDs samples with different fluorescent/optical properties. According to the model results, surface temperature reduction potential through PL effect demonstrates its highest value for QDs with solar absorption and QY near to unity, and λ AE at around 1300 nm. QDs coatings with the optimal solar absorption, QY, and λ AE showed up to 35 °C lower surface temperature than their corresponding non-fluorescent reference sample in a typical sunny day in Sydney. The maximum fluorescence contribution (Effective solar reflection (ESR)- Solar reflection (R)) is also estimated to be 0.44 for the fluorescent material with optimal optical and fluorescent property. Results of this study will support the next phase of research on fluorescent cooling. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
0038092X
Volume :
238
Database :
Academic Search Index
Journal :
Solar Energy
Publication Type :
Academic Journal
Accession number :
156782025
Full Text :
https://doi.org/10.1016/j.solener.2022.04.026