Robust Radiative Cooling in Functionalizable Silica Microsphere Paints

Fuente: arXiv
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Hauptverfasser: Burgos, Jorge, Magana, José Rodrigo, Lladós, Ares, Ferré, Javier Pascualena, Núñez-Sánchez, Sara, Fernández, Juliana Jaramillo, López, Cefe, García, Pedro David
Format: Preprint
Veröffentlicht: 2026
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author Burgos, Jorge
Magana, José Rodrigo
Lladós, Ares
Ferré, Javier Pascualena
Núñez-Sánchez, Sara
Fernández, Juliana Jaramillo
López, Cefe
García, Pedro David
author_facet Burgos, Jorge
Magana, José Rodrigo
Lladós, Ares
Ferré, Javier Pascualena
Núñez-Sánchez, Sara
Fernández, Juliana Jaramillo
López, Cefe
García, Pedro David
contents Disordered coatings based on silica microspheres provide a scalable and robust platform for passive daytime radiative cooling. While particle-size optimization is often considered critical for enhancing solar scattering, the role of microsphere diameter once a coating operates in the multiple-scattering regime remains unclear. Here, we characterize the radiative cooling performance of disordered, optically thick photonic glass coatings with diameters ranging from 2 to 8 um. Despite measurable differences in microscopic scattering properties, both the spectral radiative response and the net cooling performance are robust to variations in particle diameter when the system operates deep in the diffusive regime. Outdoor thermal measurements reveal nearly identical steady-state temperature reductions across the full size range. These results indicate that radiative cooling in photonic glass coatings is governed by collective light transport, enabling microsphere size to be selected based on surface chemistry or processing constraints without compromising cooling performance.
format Preprint
id arxiv_https___arxiv_org_abs_2606_00565
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Robust Radiative Cooling in Functionalizable Silica Microsphere Paints
Burgos, Jorge
Magana, José Rodrigo
Lladós, Ares
Ferré, Javier Pascualena
Núñez-Sánchez, Sara
Fernández, Juliana Jaramillo
López, Cefe
García, Pedro David
Optics
Disordered coatings based on silica microspheres provide a scalable and robust platform for passive daytime radiative cooling. While particle-size optimization is often considered critical for enhancing solar scattering, the role of microsphere diameter once a coating operates in the multiple-scattering regime remains unclear. Here, we characterize the radiative cooling performance of disordered, optically thick photonic glass coatings with diameters ranging from 2 to 8 um. Despite measurable differences in microscopic scattering properties, both the spectral radiative response and the net cooling performance are robust to variations in particle diameter when the system operates deep in the diffusive regime. Outdoor thermal measurements reveal nearly identical steady-state temperature reductions across the full size range. These results indicate that radiative cooling in photonic glass coatings is governed by collective light transport, enabling microsphere size to be selected based on surface chemistry or processing constraints without compromising cooling performance.
title Robust Radiative Cooling in Functionalizable Silica Microsphere Paints
topic Optics
url https://arxiv.org/abs/2606.00565