材料科学
白天
纳米-
聚乙烯
复合材料
辐射
纳米技术
光电子学
光学
大气科学
物理
地质学
作者
Yaling Zhai,Jiaxin Li,Xiaolong Su,Jian Zhao,Shuanglei Wei,Ge Tian,Jiamei Liu,Chao Jia,Meifang Zhu
标识
DOI:10.1021/acsami.5c09950
摘要
Polyethylene (PE) nonwovens produced via flash spunbonding are widely used in personal protective equipment (PPE) and construction due to their excellent mechanical strength, barrier properties, and balanced water-vapor permeability. However, conventional PE-based protective materials often experience significant heat and moisture buildup during extended use in high-temperature environments, leading to discomfort, excessive perspiration, and even heat stress. Here, we developed radiative cooling PE nonwovens (PE-P/SiO2) by applying a polyvinylidene fluoride-hexafluoropropylene (PVDF-HFP)/silicon dioxide (SiO2) hierarchical porous coating via a non-solvent-induced phase separation method. The resulting structure endows the PE nonwovens with high solar reflectance (93.8%) and strong MIR emissivity (96.4%), achieving a cooling effect of up to ∼13 °C under direct sunlight, significantly outperforming conventional PE nonwovens and cotton fabrics. Moreover, the PE-P/SiO2 nonwovens exhibit excellent self-cleaning ability, washing durability, and UV resistance, ensuring long-term performance. These radiative cooling PE nonwovens present a promising solution for enhancing thermal management in PPE and other heat-sensitive applications.
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