辐射冷却
材料科学
被动冷却
热发射率
辐射传输
涂层
共发射极
光电子学
城市热岛
热辐射
白天
选择性表面
辐射
峡谷
热的
吸收(声学)
光学
宽带
蒸发冷却器
太阳增益
红外窗口
辐射能
发射率
图层(电子)
环境科学
工作(物理)
吸收率
主动冷却
紫外线
作者
Siyuan Jia,Ronghui Wu,Syeda Mishal Zahra,Hafiz M. Asfahan,Sujin Shao,Meng Chen,Xiaofeng Jiang,Wanlin Guo,Xiuqiang Li
摘要
Passive daytime radiative cooling offers a carbon‑free route to mitigate urban heat islands and reduce building energy use. Conventional broadband emitters, however, suffer from parasitic absorption of ambient thermal radiation from hot ground and adjacent buildings, severely compromising net cooling in dense urban settings. We present a scalable, spectrally selective radiative cooling coating that overcomes this urban penalty. By combining a phase‑inversion‑derived micro‑nano porous poly (vinyl fluoride) (PVF) layer with a reflective silver substrate, our emitter achieves a record spectral selectivity of 1.37, with 97.5% solar reflectance and 94.4% mid‑infrared emittance strictly confined to the atmospheric window (8_13 µm). In simulated urban canyon tests, the selective emitter stayed 1.9°C cooler than a broadband counterpart, effectively neutralizing heat gain from surrounding infrastructure. The coating also exhibits excellent scalability, adhesion, self‑cleaning ability, and chemical durability. By bridging performance, manufacturability, and resilience, this work offers a viable pathway for adopting radiative cooling in sustainable urban development.
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