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中国物理学会期刊

基于FTO/Ag/FTO构型的高透明红外隐身薄膜设计

CSTR: 32037.14.aps.72.20231084

Design of high transparent infrared stealth thin films based on FTO/Ag/FTO structure

CSTR: 32037.14.aps.72.20231084
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  • 红外隐身与可见光隐身对光谱响应的诉求不同, 导致两者功能耦合材料设计难以调和, 因此发展光学特征选择性调控技术至关重要. 基于FTO/Ag/FTO堆叠膜层结构提出一种可见光与红外兼容隐身超构薄膜, 建立可见光高透射与红外低辐射一体化协同设计方法, 诠释微结构特征对可见光透射光谱与红外反射光谱的影响机制, 进而优化设计高透明红外隐身薄膜, 并对其兼容性隐身性能测试表征. 研究表明, 可见光透射取决于半导体介质层与金属层耦合匹配作用, 而红外辐射抑制主要取决于金属层. 经优化设计的FTO/Ag/FTO膜层结构厚度为40/12/40 nm时, 具备高水平的背景透视复现与高温红外辐射抑制能力. 该研究可为可见光与红外兼容隐身材料设计及应用提供新途径.

     

    Multi-spectral compatible stealth materials have become an imperative development trend, especially visible and infrared compatible stealth materials have become the most important in the field of optoelectronic stealth technology. However, infrared stealth and visible stealth have different requirements for spectral response, which makes it difficult to reconcile the design of functional coupling materials. Therefore, it is very important to develop selective control technology of optical characteristics. A visible and infrared compatible stealth superstructure thin film is proposed based on the FTO/Ag/FTO stacked film structure. A collaborative design method for high visible transmission and low infrared radiation is established, and the mechanism of microstructure characteristics affecting visible transmission and infrared reflection spectra is explained. The infrared stealth thin film with high transparency is optimized, and its compatibility stealth performance is tested and characterized by visible light transmission spectrum, infrared reflection spectrum, and thermal imaging characterization technology. It is shown that visible transmission depends on the coupling and matching effect between the semiconductor dielectric layer and the metal layer, while infrared radiation suppression mainly relies on the metal layer. As the thickness of FTO film increases, the visible transmission peak undergoes a red shift, leading the transmission spectrum curve to flatten, the average transmission first increases and then gradually decreases. As the thickness of Ag thin film layer increases, the transmission peak of visible light undergoes a blue shift, causing the transmission spectrum curve to tend to a high-frequency transmission state, narrowing the frequency domain of visible light transmission and gradually reducing the average transmittance decreases gradually. At the same time, the infrared reflectance increases with the Ag film thickness increasing, but the change of amplitude significantly decreasing when the Ag film thickness is greater than 18 nm. When the thickness of the optimized FTO/Ag/FTO film structure is 40/12/40 nm, it has a high level of background perspective reproduction and high ability to suppress high-temperature infrared radiation. The average transmittance of 0.38–0.78 μm visible light band is 82.52%, and the average reflectance of 3–14 μm mid-far infrared band is 81.46%. The radiation temperature of the sample is 49 ℃ lower in the mid infrared range and 75.8 ℃ lower in far infrared range than that of the quartz sheet at 150 ℃, respectively. The new stealth film can be attached to the camouflage coating surface of special vehicle to achieve visible and infrared compatible stealth, and can be used for cockpit windows to ensure thermal insulation, temperature control, and infrared stealth without affecting the field of view. This study can provide a new approach for designing and utilizing the visible and infrared compatible stealth materials.

     

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