材料科学
气凝胶
辐射冷却
被动冷却
纤维素
蒸发
化学工程
传热
光电子学
纳米技术
热力学
物理
工程类
作者
Aobo Geng,Su Guo,Qi Yao,Xiaodan Wu,Xin Zhao,Chunxiang Ding,Chenyang Cai
出处
期刊:Small
[Wiley]
日期:2025-08-15
标识
DOI:10.1002/smll.202508254
摘要
Passive radiative cooling technology shows great application in next-generation thermal regulation fields, but still suffers from thermodynamic limits. Combining evaporation cooling and radiative cooling offers a promising solution to address this drawback, however, existing dual-functional devices exhibit poor efficiency and structure stability. Inspired by the vapor transfer process in the tree, an encapsulate-structured cellulose hygroscopic aerogel (CHA) is proposed via unidirectional freeze casting of crosslinked cellulose nanofiber/Al2O3 suspension and assembly of LiCl in 3D network of aerogel, featuring daytime radiative cooling integrated with hygroscopic-evaporation cooling functionality. It can efficiently eliminate water nucleation near the 3D network, boost vapor transfer kinetics in aligned channels, and address trade-offs between cooling efficiency and structure durability, thereby resulting in high water absorption of 2.7 g g-1 in 90% RH, high solar reflectance of 96.4%, high infrared emissivity of 0.94, and well-structured stability. Field test demonstrated that it can achieve subambient cooling of 10.6 °C under direct sunlight during daytime with RH of 73%, higher than that of previous reports. Most importantly, CHA also exhibited unique structure stability and longtime use ability. This work paves the way for developing high and stable outdoor cooling materials toward energy savings.
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