光子学
材料科学
光学
热的
散射
光电子学
辐照度
紫外线
波长
反射率
太阳辐照度
光学涂层
量子光学
光伏系统
激光器
光散射
热平衡
辐射传输
热稳定性
瑞利散射
太阳能
随机激光器
物理
作者
Hui Li,Hexiang Han,Zhiyuan Zhao,Hao Gong,Xiaokun Song,Zhongyang Wang,Gang Liu,Tongxiang Fan,Xiao Zhou,Di Zhang
标识
DOI:10.1038/s41377-026-02372-9
摘要
Cryogenic thermal control coatings represent a significant advancement over existing coatings limited to high reflectance in the 0.2-2.5 μm solar spectrum range, being able to reflect 96.6% of solar irradiance and to reach about 145 K equilibrium temperature, offering transformative potential for deep-space exploration, remote sensing, and other cryogenic applications. To achieve the cryogenic temperature further lower than 100 K in space, the peculiar optical property to reflect 99.9% of solar irradiance becomes necessary, which can be realized by an ultra-broadband reflectance from 0.2 to 8 μm. Here, we propose a bi-layer meta-composite comprising two distinct photonic random media, where rationally designed scatterer sizes selectively target short- and long-wavelength solar irradiance. By matching the scattering peak regimes, the meta-composite achieves a weighted solar reflectance of 97.3% over an ultrabroad 0.2-8 μm region. In the home-built deep-space simulator, the bi-layer meta-composite maintains an equilibrium temperature of 145 K, superior to existing coatings designed for room-temperature thermal control. Ground simulated irradiation tests further demonstrate exceptional optical stability under charged particles and atomic oxygen irradiations, with degradation of less than 1.5%. Moreover, the meta-composite retains optical properties comparable to existing coatings even after long-term ultraviolet irradiation. This work not only highlights the viability of photonic random meta-composites for cryogenic thermal control but also introduces a scattering regime matching strategy to broaden the spectral selectivity of disordered photonic systems.
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