材料科学
聚酰亚胺
航天器
纳米纤维
辐射冷却
电子设备和系统的热管理
热的
静电纺丝
复合材料
光电子学
化学工程
聚合物
航空航天工程
机械工程
气象学
图层(电子)
物理
工程类
作者
Xiaokun Song,Hao Gong,Hongchao Li,Manyao Zhang,Lin Jiang,Chao Wang,Peipei Jiang,Huifen Wang,Kangli Cao,Gang Liu,Qibin Zhao,Tongxiang Fan
标识
DOI:10.1002/adfm.202413191
摘要
Abstract Radiative cooling films (RCFs) are crucial for spacecraft thermal management, but their optical performance is currently limited by their structures and intrinsic high absorption at short wavelengths. In this study, a novel RCF using electrospun polyimide nanofibers optimized at both the molecular and microscale levels is developed. The newly designed polyimide molecules significantly decrease visible and ultraviolet (UV) light absorption while maintaining excellent thermal radiation properties in the infrared spectrum. By optimizing the diameter and orientation of the nanofibers using Monte Carlo simulations, the resulting film achieves a solar reflectivity of 99.6% and a mid‐infrared emissivity of 0.93. Its physical structures and optical properties remain stable under exposure to UV light, atomic oxygen, and extreme temperature changes. Further vacuum radiative cooling tests reveal that the thermal equilibrium temperature of this film is approximately 28 °C lower than that of Kapton‐based RCFs currently used in spacecraft. These results provide a new approach for creating efficient thermal management materials for space applications, with potential for broader use in architecture, electronic devices, and outdoor equipment.
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