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用于同时实现红外伪装和辐射冷却的三层薄膜

Three-Layered Thin Films for Simultaneous Infrared Camouflage and Radiative Cooling.

作者信息

Zhang Luyu, Zhang Wenjie, Liu Yuanbin, Liu Linhua

机构信息

School of Energy and Power Engineering, Shandong University, Jinan 250061, China.

Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Department of Engineering Mechanics, Tsinghua University, Beijing 100084, China.

出版信息

Materials (Basel). 2023 Jun 5;16(11):4188. doi: 10.3390/ma16114188.

Abstract

With the rapid advancements in aerospace technology and infrared detection technology, there are increasing needs for materials with simultaneous infrared camouflage and radiative cooling capabilities. In this study, a three-layered Ge/Ag/Si thin film structure on a titanium alloy TC4 substrate (a widely used skin material for spacecraft) is designed and optimized to achieve such spectral compatibility by combining the transfer matrix method and the genetic algorithm. The structure exhibits a low average emissivity of 0.11 in the atmospheric windows of 3-5 μm and 8-14 μm for infrared camouflage and a high average emissivity of 0.69 in 5-8 μm for radiative cooling. Furthermore, the designed metasurface shows a high degree of robustness regarding the polarization and incidence angle of the incoming electromagnetic wave. The underlying mechanisms allowing for the spectral compatibility of the metasurface can be elucidated as follows: the top Ge layer selectively transmits electromagnetic waves ranging from 5-8 μm while it reflects those in the ranges of 3-5 μm and 8-14 μm. The transmitted electromagnetic waves from the Ge layer are first absorbed by the Ag layer and then localized in the Fabry-Perot resonance cavity formed by Ag layer, Si layer and TC4 substrate. Ag and TC4 make further intrinsic absorptions during the multiple reflections of the localized electromagnetic waves.

摘要

随着航空航天技术和红外探测技术的飞速发展,对同时具备红外伪装和辐射冷却能力的材料的需求日益增加。在本研究中,在钛合金TC4基板(一种广泛用于航天器的蒙皮材料)上设计并优化了一种三层Ge/Ag/Si薄膜结构,通过结合传输矩阵法和遗传算法来实现这种光谱兼容性。该结构在3-5μm和8-14μm的大气窗口中表现出0.11的低平均发射率以实现红外伪装,在5-8μm中表现出0.69的高平均发射率以实现辐射冷却。此外,所设计的超表面对于入射电磁波的偏振和入射角表现出高度的鲁棒性。超表面实现光谱兼容性的潜在机制如下:顶部的Ge层选择性地透射5-8μm范围内的电磁波,同时反射3-5μm和8-14μm范围内的电磁波。从Ge层透射的电磁波首先被Ag层吸收,然后局域在由Ag层、Si层和TC4基板形成的法布里-珀罗共振腔中。在局域电磁波的多次反射过程中,Ag和TC4会进一步产生本征吸收。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4067/10254754/8acbc647311f/materials-16-04188-g001.jpg

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