含氟聚合物
材料科学
多孔性
多孔介质
湿度
辐射传输
相(物质)
化学工程
辐射冷却
化学
聚合物
复合材料
光学
气象学
有机化学
物理
工程类
作者
Yiting Zhang,Jiahui Sun,Yufeng Wang,Yunchen Wu,Chun Huang,Xu Zhang,Chao Zhang,Tianxi Liu
出处
期刊:Macromolecules
[American Chemical Society]
日期:2025-04-02
卷期号:58 (8): 4309-4319
被引量:5
标识
DOI:10.1021/acs.macromol.5c00395
摘要
Daytime passive radiative cooling is a highly desirable technology for cooling objects exposed to direct sunlight, offering a sustainable and energy-efficient solution without the need for electricity. However, widespread implementation of this cooling method is hindered by the complex preparation process and limited cooling power of existing radiative cooling materials. Herein, a simple and sustainable ambient humidity-induced phase separation approach was proposed for the fabrication of porous fluoropolymer films with unique hierarchical structures. This method is based on the exchange from DMSO (good solvent) to H2O (poor solvent), where interactions within and between the poly(vinylidene fluoride) (PVDF) and poly(vinyl alcohol) (PVA) are first inhibited and then restored, leading to polymer dissolution and cross-linking. The PVA-coated granular PVDF was phase-separated from the solution by controlling the rate of solvent exchange, resulting in the formation of film with graded micro- and nanoporosity upon freeze-drying. The porous fluoropolymer film exhibits an exceptional spectral performance with an infrared emissivity exceeding 97.6% within the atmospheric window and a high sunlight scattering capability of 95.3%. When subjected to direct sunlight, the porous fluoropolymer film is capable of achieving an average net radiative cooling power of 76.09 W m–2, rendering it to cool objects by 7.5 °C. Moreover, the film demonstrates mechanical flexibility and environmental stability, enabling its application on irregularly shaped cooling surfaces. This study therefore introduces a promising avenue for the cost-effective and large-scale production of radiative cooling porous materials.
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