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High‐Efficiency Thermal‐Shock Resistance Enabled by Radiative Cooling and Latent Heat Storage

作者:Mulin Qin, Kaihang Jia, Usman Ali, Shenghui Han, Feng Xiong, Haiwei Han, Yongkang Jin, Waseem Aftab, Xiaoye Geng, Bingbing Ma, Zubair Ashraf, Song Gao, Yonggang Wang, Zhenghui Shen, Ruqiang Zou · 发表于:Advanced Materials · 年份:2024 · DOI:10.1002/adma.202314130 · 被引用次数:74 · 研究领域:Thermal Radiation and Cooling Technologies、Optical properties and cooling technologies in crystalline materials、Radiative Heat Transfer Studies

Radiative cooling technology is well known for its subambient temperature cooling performance under sunlight radiation. However, the intrinsic maximum cooling power of radiative cooling limits the performance when the objects meet the thermal shock. Here, a dual-function strategy composed of radiative cooling and latent heat storage simultaneously enabling the efficient subambient cooling and high-efficiency thermal-shock resistance performance is proposed. The electrospinning and absorption-pressing methods are used to assemble the dual-function cooler. The high sunlight reflectivity and high mid-infrared emissivity of radiative film allow excellent subambient temperature of 5.1 °C. When subjected the thermal shock, the dual-function cooler demonstrates a pinning effect of huge temperature drop of 39 °C and stable low-temperature level by isothermal heat absorption compared with the traditional radiative cooler. The molten phase change materials provide the heat-time transfer effect by converting thermal-shock heat to the delayed preservation. This strategy paves a powerful way to protect the objects from thermal accumulation and high-temperature damage, expanding the applications of radiative cooling and latent heat storage technologies.