材料科学
辐射冷却
光电子学
发射率
复合材料
复合数
红外线的
红外窗口
被动冷却
辐射传输
热的
吸收(声学)
光学
低发射率
氮化硅
热辐射
聚二甲基硅氧烷
光子学
二氧化硅
太阳能
蜂窝结构
硅
热导率
紫外线
耐久性
纳米材料
纳米复合材料
氮化硼
辐射能
热能
图层(电子)
晶体硅
薄膜
温度循环
不透明度
作者
Seongwoo Park,J. Park,Hangyu Lim,Jisung Ha,Seungyeon Lee,Heon Lee
标识
DOI:10.1002/adom.202502930
摘要
ABSTRACT Radiative cooling is a passive thermal management strategy that reduces heat gain by reflecting solar energy and emitting infrared (IR) radiation through the atmospheric transparent window (ATW) corresponding to (8–13 µm), without energy consumption. In this study, we developed a mechanically robust, freestanding high‐performance radiative cooling composite film by dispersing silicon dioxide (SiO 2 ) and hexagonal boron nitride (h‐BN) into a polydimethylsiloxane (PDMS) matrix. The resulting SiO 2 ‐BN‐PDMS (SBP) film leverages a synergistic platelet‐sphere filler architecture, in which plate‐like h‐BN provides strong backscattering of solar light while spherical SiO 2 suppresses parasitic UV absorption and improves mechanical integrity at reduced filler loading. As a result, the composite film achieved a solar reflectance of up to 97.2% and an ATW emissivity up to 95.8%, enabling efficient passive radiative cooling under direct sunlight. Outdoor measurements demonstrated that the SBP film reduced surface temperature by 8.2°C below inner ambient conditions under direct sunlight. Furthermore, the film exhibits mechanical flexibility, hydrophobicity, and durability under thermal and weathering conditions, suggesting strong potential for applications in standalone cooling membranes for electronics cooling, and human protection in sun‐exposed environments.
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