纳米孔
材料科学
发射率
造型(装饰)
辐射冷却
阳光
复合材料
辐射传输
屋顶
环境科学
光电子学
纳米技术
工程类
气象学
光学
物理
结构工程
作者
Kai Zhou,Wei Li,Bindiya Patel,Ran Tao,Yi-Long Chang,Shanhui Fan,Ying Diao,Lili Cai
出处
期刊:Nano Letters
[American Chemical Society]
日期:2021-01-19
卷期号:21 (3): 1493-1499
被引量:120
标识
DOI:10.1021/acs.nanolett.0c04810
摘要
Daytime radiative cooling presents an exciting new strategy for combating global warming, because it can passively cool buildings by reflecting sunlight and utilizing the infrared atmospheric window to eject heat into outer space. Recent progress with novel material designs showed promising subambient cooling performance under direct sunlight. However, large-scale implementation of radiative cooling technologies is still limited by the high-cost and complex fabrication. Here, we develop a nanoporous polymer matrix composite (PMC) to enable rapid production and cost reduction using commercially available polymer processing techniques, such as molding, extrusion, and 3D printing. With a high solar reflectance of 96.2% and infrared emissivity > 90%, the nanoporous PMC achieved a subambient temperature drop of 6.1 °C and cooling power of 85 W/m2 under direct sunlight, which are comparable to the state-of-the-art. This work offers great promise to make radiative cooling technologies more viable for saving energy and reducing emissions in building cooling applications.
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