材料科学
辐射冷却
过热(电)
辐射传输
纳米复合材料
热的
热辐射
被动冷却
光电子学
数码产品
电子设备和系统的热管理
纳米技术
核工程
工程物理
复合材料
光学
热力学
机械工程
物理
电气工程
工程类
作者
Huatian Zhai,Chao Liu,Desong Fan,Qiang Li
标识
DOI:10.1021/acsami.2c13991
摘要
Radiative cooling has been considered an innovative passive method to resolve the problem of overheating of electronic devices. However, it is inefficient for cooling huge heat generation components. Herein, we report a dual-encapsulated nanocomposite (DEN) by integrating radiative cooling and phase-change materials (PCMs) for thermal buffering in heat-generating radiative cooling. The leak of PCMs is avoided by a simple dual-encapsulated structure with a three-dimensional (3D) interconnected cellular-like network structure and radiative cooling layer on the surface, 75% superior to the state-of-the-art single encapsulation designs. Additionally, our DEN not only shows outstanding optical properties with strong solar reflection (R̅solar = 0.96) and IR-selective emission (ε̅8-13 μm = 0.94 and ηε = 1.15) but also exhibits high phase-change enthalpy (ΔHm = 192.2 J/g, ΔHc = 175.7 J/g), enabling remarkable radiative cooling capability and desirable thermal energy peak shaving and valley filling effect. Outdoor experiments demonstrate that DEN achieves a temperature drop up to 23 °C compared to the control group without DEN coverage when electronics generate heat. This dual-encapsulated nanocomposite provides a novel strategy and solution for outdoor passive thermal management.
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