被动冷却
辐射冷却
发射率
材料科学
电子设备和系统的热管理
主动冷却
环境科学
阳光
热的
核工程
光电子学
复合材料
机械工程
水冷
光学
工程类
气象学
物理
作者
Yuxin Zhang,Xiongfei Du,Jiawei Huangfu,Kaikai Chen,Xutong Han,Changfa Xiao,Qinglin Huang
标识
DOI:10.1016/j.cej.2024.151831
摘要
Passive daytime radiative cooling (PDRC) is an innovative, eco-friendly, and electricity-free cooling strategy that involves spontaneously cooling a surface by reflecting sunlight and radiating heat to cold outer space. Currently, many kinds of research focus on the effects of material design and structure construction on PDRC performance. However, the PDRC suffers a significant challenge of performance degradation arising from surface contamination and poor long-term outdoor durability. Herein, we developed a simple, efficient, and scalable strategy to prepare a superhydrophobic poly-(tetrafluoroethylene) (PTFE) nanofiber membrane (SNM-PTFE) with outstanding radiative cooling and self-cleaning performance for various practical applications. The SNM-PTFE has an average infrared emissivity 95.8 % and reflects 95.4 % of solar irradiance. It brought about a sub-ambient cooling performance of ∼ 14.4 °C under direct sunlight. Moreover, it demonstrated excellent above-ambient cooling performance by reducing ∼ 9. °C under sunlight, which exhibited unprecedented heat dissipation and solar heat-shielding properties. The self-cleaning surface of SNM-PTFE maintained its good cooling performance after being exposed to outdoor conditions for a full month. SNM-PTFE showed great promise for PDRC, which can further extend the application for residential, industrial applications, and human thermal management.
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