Skip to main content

Simulation study on optimizing spectral selectivity of thick PAA/Al bilayers for passive daytime radiative cooling

Research Abstract

Passive radiative cooling offers energy-free sub-ambient cooling; however, its main challenge is achieving low solar absorption (visible − NIR) while maintaining strong thermal emission in the mid-infrared atmospheric window. In this work, we numerically investigate a planar porous anodic alumina (PAA)/Al bilayer as a spectrally selective emitter for daytime radiative cooling. The optical response of the PAA layer is modeled using an effective-medium approach based on the Maxwell–Garnett (MG) formalism, allowing systematic tuning of porosity. The simulations are conducted using COMSOL software with a highly refined mesh to ensure accuracy. The study demonstrates the influence of PAA thickness, Al thickness, and porosity on thermal emissivity in the mid-infrared range. Furthermore, field intensity, power dissipation, and penetration-depth analyses are consistent with mid-infrared spectral selectivity originating primarily from intrinsic phonon absorption within the Reststrahlen band of alumina, modulated by wavelength-dependent interference effects. At an incident angle of 35◦, where the simulated angular emissivity profile exhibits a local maximum for TM polarization, the PAA/Al bilayer achieves an average emissivity of 0.982 within the atmospheric window (8 − 13 μm) for a porosity of 30%. Moreover, the designed structure shows high PRC performance under normal atmospheric conditions, achieving a maximum temperature reduction of up to 8.3◦C below ambient temperature. Also, at thermal equilibrium, it delivers an anticipated net cooling power of 77.36W/m2. The PAA-based approach proposed here provides a promising route for producing low-cost, efficient radiative coolers at large scales for practical energy conservation

Research Authors
Zeinelabedin A. Mohamed, Małgorzata Norek
Research Date
Research Department
Research Journal
Solar Energy Materials and Solar Cells
Research Member
Research Year
2026