4.8 Article

Flexible Daytime Radiative Cooling Enhanced by Enabling Three-Phase Composites with Scattering Interfaces between Silica Microspheres and Hierarchical Porous Coatings

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 16, Pages 19282-19290

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c02145

Keywords

composite radiative cooling; hierarchical porous coating; silica microsphere; optical scattering interface; Mie theory-based Monte Carlo simulation

Funding

  1. National Key Research and Development Program of China [2017YFB1002900]
  2. National Natural Science Foundation of China [61405132, 51661145021]
  3. Key Natural Science Program of Jiangsu Province [BK20181167, BE2016772, BK20151540]
  4. Opening Project of State Key Laboratory of High Performance Ceramics and Superfine Microstructure [SKL201912SIC]
  5. Traction Project of Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province [Q816000217]
  6. Priority Academic Program Development (PAPD) of Jiangsu Higher Education Institutions

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The study introduces a three-phase hybrid porous composite coating that increases solar reflectance and achieves significant temperature drops. This new coating shows enhanced performance and offers a promising alternative for daytime radiative coolers.
Daytime radiative cooling has attracted considerable attention recently due to its tremendous potential for passively exploiting the coldness of the universe as clean and renewable energy. Many advanced materials with novel photonic micro/nanostructures have already been developed to enable highly efficient daytime radiative coolers, among which the flexible hierarchical porous coatings (HPCs) are a more distinguished category. However, it is still hard to precisely control the size distribution of the randomized pores within the HPCs, usually resulting in a deficient solar reflection at the near-infrared optical regime under diverse fabrication conditions of the coatings. We report here a three-phase (i.e., air pore-phase, microsphere-phase, and polymer-phase) self-assembled hybrid porous composite coating, which dramatically increases the average solar reflectance and yields remarkable temperature drops of similar to 10 and similar to 30 degrees C compared to the ambient circumstance and black paint, respectively, according to the rooftop measurements. Mie theory and Monte Carlo simulations reveal the origin of the low reflectivity of as-prepared two-phase porous HPCs, and the optical cooling improvement of the three-phase porous composite coatings is attributed to the newly generated interfaces possessing the high scattering efficiency between the hierarchical pores and silica microspheres hybridized with appropriate mass fractions. As a result, the hybrid porous composite approach enhances the whole performance of the coatings, which provides a promising alternative to the flexible daytime radiative cooler.

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