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Ag@ZnO锥形超材料结构中的选择性波长完美红外吸收

Selective-wavelength perfect infrared absorption in Ag@ZnO conical metamaterial structure.

作者信息

Faisal Muhammad, Ur Rahman Atta, Khan Sajid, Siyaf Muhammad, Shah Tawaf Ali, Okla Mohammad K, Bourhia Mohammed, Younous Youssouf Ali

机构信息

Department of Physics, Kohat University of Science and Technology, Kohat, KPK, Pakistan.

Department of Physics, Khushal Khan Khattak University, Karak, KPK, Pakistan.

出版信息

Sci Rep. 2024 Sep 12;14(1):21321. doi: 10.1038/s41598-024-71260-2.

Abstract

We present a new selective Metamaterial Perfect Absorber (MPA) consisting of zinc oxide embedded silver (Ag@ZnO), designed for applications in infrared stealth technology. The numerical simulation included a wide frequency range from 1 to 1000 THz and shows that the design MPA structure presented two absorption peaks at the desired wavelengths of 1.7 µm and 6.5 µm. The absorptivity of both peaks reached approximately 93.1% and 93.5%. The first peak at 1.7 µm decreases the scattering of IR laser beams from the surface of the MPA structure and also lowers the infrared tracks that could direct laser-guided devices to its specific target. On the other hand, the second peak reduces the surface heat wave. The suggested MPA (Ag@ZnO) structure is activated by a plane wave using a full wave vector and a broad frequency domain solution. In the framework of computer simulation technology (CST) Microwave Studio, uses both Finite-Difference-Time-Domain (FDTD) and Finite-Element-Method (FEM) techniques to predict the optical behavior of the proposed MPA structure. Both peaks achieved a high value of absorptivity due to the simultaneous excitation of the electric and magnetic dipole at resonance wavelength.

摘要

我们展示了一种新型的由氧化锌包覆银(Ag@ZnO)构成的选择性超材料完美吸收体(MPA),其设计用于红外隐身技术。数值模拟涵盖了从1到1000太赫兹的宽频率范围,结果表明所设计的MPA结构在1.7微米和6.5微米的期望波长处呈现出两个吸收峰。两个峰的吸收率分别达到约93.1%和93.5%。1.7微米处的第一个峰减少了红外激光束从MPA结构表面的散射,也降低了可能将激光制导装置引向其特定目标的红外轨迹。另一方面,第二个峰减少了表面热波。所建议的MPA(Ag@ZnO)结构通过使用全波矢量和宽频域解的平面波来激活。在计算机模拟技术(CST)微波工作室的框架下,使用时域有限差分(FDTD)和有限元方法(FEM)技术来预测所提出的MPA结构的光学行为。由于在共振波长处电偶极子和磁偶极子的同时激发,两个峰都实现了高吸收率值。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7c9b/11393131/65463871ef56/41598_2024_71260_Fig1_HTML.jpg

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本文引用的文献

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