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Published on: August 16, 2012
Thermoplastic Polyurethane-Based Composite Film with a Hierarchical Porous Structure for Radiative Cooling and
Chao Shi1, Xinyu Tan1,2, Shengyu Chen1
1Hubei Provincial Engineering Research Center for Solar Energy High-Value Utilization and Green Conversion, China Three Gorges University, Yichang, Hubei 443002, P. R. China.
Abstract:
Passive radiative cooling (PRC) technology achieves cooling by reflecting solar radiation and radiating heat to cold outer space through a transparent atmospheric window (8-13 μm). In this research, we developed a porous thermoplastic polyurethane doped with MgO (PTM) film with a hierarchical porous structure via a water-solvent phase separation method, which simultaneously realizes high-performance radiative cooling (solar reflectivity of 94%, mid-infrared emissivity of 0.95) and broad-spectrum antibacterial function. It achieved an average cavity cooling effect of 14.6 °C compared to a blank group at a solar radiation intensity of 630 W·m-2, with a theoretical cooling power of 108.4 W·m-2. Moreover, the PTM film has excellent antibacterial properties, with an inhibition rate of over 95% against Escherichia coli. The integrated dual functionality exhibits remarkable practical advantages: When applied to fresh strawberry preservation, this synergistic mechanism achieves 4-8 °C localized cooling compared with ambient conditions, effectively suppressing both enzymatic browning and bacterial growth. The treated strawberries maintained optimal freshness for at least 5 days, a significant extension compared to conventional storage. This performance is accomplished without external energy input, demonstrating the film's potential for zero-energy cooling and hygiene maintenance in food preservation systems.

