材料科学
红外线的
辐射冷却
热发射率
热光电伏打
光电子学
超材料
辐射传输
共发射极
宽带
透明度(行为)
窄带
光学
介孔材料
不透明度
无定形固体
红外窗口
发射率
被动冷却
辐射热
多孔性
纳米技术
热辐射
领域(数学)
表征(材料科学)
选择性表面
透射率
作者
Aryan Zaveri,Susan Eungyung Ju,Andrew R. Tuokkola,Rebecca McAlpine,Ricardo Martinez,Joeun Kim,Shinichi Furuya,Laurent Pilon,Bruce Dunn,Sarah H. Tolbert,Aaswath P. Raman
出处
期刊:Small
[Wiley]
日期:2026-08-13
卷期号:: e75152-e75152
摘要
ABSTRACT Efficient radiative cooling requires an unobstructed view of the sky. However, the vertical facades of buildings see terrestrial features, which act as broadband infrared emitters of heat in the summer. As a result, for conventional materials, including building windows, terrestrial heat gain in the summer can negate or overwhelm a vertically‐oriented surface's narrowband long‐wave infrared (LWIR) emission to space. To address this challenge, here we develop a visibly transparent, LWIR‐selective mesoporous metamaterial suitable for use on windows that is designed to emit selectively within the 8–13 µm atmospheric transparency window. This material, a highly porous organosilica network dried under ambient conditions known as an ambigel, leverages phonon‐polariton resonances to achieve high and selective emittance in the transparency window. Experimental characterization and modeling suggest that the bond angle and length distributions of amorphous SiO 2 in this ambigel differs significantly from those in fused silica, highlighting a new degree of freedom for optical design. Field tests demonstrate that the ambigel maintains surface temperatures approximately 0.5°C lower than a conventional broadband emitter in representative conditions. Our results demonstrate a material design strategy for a visibly transparent infrared selective material that can enable effective radiative cooling for windows and building facades.
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