Qiaoran Zhang (7524659)Tengrui Wang (5949329)Ran Du (552530)Jiayi Zheng (3441902)Hongliang Wei (16484083)Xiaoyu Cao (4426708)Xianhu Liu (1894603)
Passive radiative cooling technology without electric consumption is an emerging sustainability technology that plays a key role in advancing sustainable development. However, most radiative cooling materials are vulnerable to outdoor contamination and thermal/UV exposure, which leads to decreased performance. Herein, we report a hierarchically structured polyimide/zinc oxide (PINF/ZnO) composite membrane that integrates sunlight reflectance of 91.4% in the main thermal effect of the solar spectrum (0.78–1.1 μm), the mid-infrared emissivity of 90.0% (8–13 μm), UV shielding performance, thermal resistance, and ideal hydrophobicity. The comprehensive performance enables the composite membrane to yield a temperature drop of ∼9.3 °C, compared to the air temperature, under the peak solar irradiance of ∼800 W m–2. In addition, the temperature drop of as-obtained composite membranes after heating at 200 °C for 6 h in a nitrogen/air atmosphere can be well maintained at ∼9.0 °C, demonstrating their ideal radiative cooling effect in a high-temperature environment. Additionally, the PINF/ZnO composite membrane shows excellent chemical durability after exposure to the outdoor environment. This work provides a new strategy to integrate chemical durability and thermal resistance with radiative cooling, presenting great potential for passive radiative cooling materials toward practical applications in harsh environments.
Qiaoran ZhangTengrui WangRan DuJiayi ZhengHongliang WeiXiaoyu CaoXianhu Liu
Dongwoo ChaeHangyu LimSunae SoSoomin SonSucheol JuWonjoong KimJunsuk RhoHeon Lee
Xitao YangHaoqun HongHaiyan ZhangXiaobin Hong
Dongwoo Chae (8422824)Hangyu Lim (9689549)Sunae So (4685941)Soomin Son (7449518)Sucheol Ju (7449512)Wonjoong Kim (7449524)Junsuk Rho (4436116)Heon Lee (1842823)
Shenjie ZhongLingmin YiJiawen ZhangTianqi XuLang XuXun ZhangTian ZuoYingjie Cai