材料科学
辐射冷却
发射率
光子学
散热器(发动机冷却)
光电子学
透射率
涂层
光学
复合材料
制作
纳米技术
病理
物理
热力学
替代医学
医学
作者
Xin Wang,Xianghui Liu,Zhenyang Li,Haiwen Zhang,Zhiwei Yang,Han Zhou,Tongxiang Fan
标识
DOI:10.1002/adfm.201907562
摘要
Abstract Passive radiative cooling technology can cool down an object by reflecting solar light and radiating heat simultaneously. However, photonic radiators generally require stringent and nanoscale‐precision fabrication, which greatly restricts mass production and renders them less attractive for large‐area applications. A simple, inexpensive, and scalable electrospinning method is demonstrated for fabricating a high‐performance flexible hybrid membrane radiator (FHMR) that consists of polyvinylidene fluoride/tetraethyl orthosilicate fibers with numerous nanopores inside and SiO 2 microspheres randomly distributed across its surface. Even without silver back‐coating, a 300 µm thick FHMR has an average infrared emissivity >0.96 and reflects ≈97% of solar irradiance. Moreover, it exhibits great flexibility and superior strength. The daytime cooling performance this device is experimentally demonstrated with an average radiative cooling power of 61 W m −2 and a temperature decrease up to 6 °C under a peak solar intensity of 1000 W m −2 . This performance is comparable to those of state‐of‐the‐art devices.
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