辐射冷却
被动冷却
材料科学
涂层
阳光
微型多孔材料
辐射传输
紫外线
纳米孔
光电子学
湿度
复合材料
光学
环境科学
气象学
纳米技术
物理
热的
作者
Xinpeng Zhao,Tangyuan Li,Hua Xie,He Liu,Lingzhe Wang,Yurui Qu,Stephanie C. Li,Shufeng Liu,Alexandra H. Brozena,Zongfu Yu,Jelena Srebric,Liangbing Hu
出处
期刊:Science
[American Association for the Advancement of Science (AAAS)]
日期:2023-11-09
卷期号:382 (6671): 684-691
被引量:114
标识
DOI:10.1126/science.adi2224
摘要
Passive daytime radiative cooling materials could reduce the energy needed for building cooling up to 60% by reflecting sunlight and emitting long-wave infrared (LWIR) radiation into the cold Universe (~3 kelvin). However, developing passive cooling structures that are both practical to manufacture and apply while also displaying long-term environmental stability is challenging. We developed a randomized photonic composite consisting of a microporous glass framework that features selective LWIR emission along with relatively high solar reflectance and aluminum oxide particles that strongly scatter sunlight and prevent densification of the porous structure during manufacturing. This microporous glass coating enables a temperature drop of ~3.5° and 4°C even under high-humidity conditions (up to 80%) during midday and nighttime, respectively. This radiative "cooling glass" coating maintains high solar reflectance even when exposed to harsh conditions, including water, ultraviolet radiation, soiling, and high temperatures.
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