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Abstract
Owing to excellent solar reflectivity and sky window emissivity, disordered heterogenous materials, including filler-abundant matrices, paints, and coatings, as well as foam-like, fiber-stacked and composite porous structures, form a major class for efficient passive radiative cooling. Contrary to well-established empirical understanding, this work offers a generalized analytical overview of their macroscopic thermo-optical properties from the microscopic electromagnetic perspective of Maxwell-Garnett effective medium theory. With the family of micro-porous poly(vinylidene-fluoride)/poly(methyl-methacrylate) blends as a representative example, procedures for tailoring mid-infrared spectral emissivity via effective permittivity are outlined. Theoretical framework and design scheme are validated by finite difference time domain simulation and Fourier transform infrared spectrometry. It is shown that poly(vinylidene-fluoride) and poly(methyl-methacrylate) form a pair of complementary constitutive materials for near unity thermal emission through the atmospheric window. Optimized binary polymeric blend, prepared by spray-coating method, features a window emissivity of 98% and realizes nocturnal radiative cooling with a temperature reduction of 6.8 °C and a cooling power of 94 W/m2 in an outdoor field investigation. It can serve as a promising bifunctional material for simultaneous radiative heat dissipation and capacitive energy storage, which meets the demand for nocturnal, radiative cooling aided thermoelectricity generation and storage potential.
| Original language | English |
|---|---|
| Article number | 112003 |
| Journal | Solar Energy Materials and Solar Cells |
| Volume | 248 |
| Online published | 16 Sept 2022 |
| DOIs | |
| Publication status | Published - Dec 2022 |
Funding
This research is funded by the Hong Kong Research Grant Council via General Research Fund (GRF) account 16200518.
Research Keywords
- Disordered heterogeneous materials
- Effective medium theory
- Electromagnetism
- Light-matter interaction
- Radiative cooling
- Thermo-optics
Publisher's Copyright Statement
- COPYRIGHT TERMS OF DEPOSITED POSTPRINT FILE: © 2022. This manuscript version is made available under the CC-BY-NC-ND 4.0 license https://creativecommons.org/licenses/by-nc-nd/4.0/.
RGC Funding Information
- RGC-funded
Fingerprint
Dive into the research topics of 'Maxwell-Garnett permittivity optimized micro-porous PVDF/PMMA blend for near unity thermal emission through the atmospheric window'. Together they form a unique fingerprint.Projects
- 1 Finished
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GRF: Anomalous Photon Transport induced Asymmetric Electromagnetic Transmission for use in Daytime Passive Radiative Cooling in a Humid Climate
TSO, C. Y. (Principal Investigator / Project Coordinator), CHAO, C. Y. H. (Co-Investigator) & Huang, B. (Co-Investigator)
1/01/19 → 24/11/22
Project: Research