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Selective dual-band metamaterial perfect absorber for infrared stealth technology

机译:用于红外隐身技术的选择性双频超材料完美吸收体

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摘要

We propose a dual-band metamaterial perfect absorber with a metal–insulator–metal structure (MIM) for use in infrared (IR) stealth technology. We designed the MIM structure to have surface plasmon polariton (SPP) and magnetic polariton (MP) resonance peaks at 1.54 μm and 6.2 μm, respectively. One peak suppresses the scattering signals used by laser-guided missiles, and the other matches the atmospheric absorption band, thereby enabling the suppression of long-wavelength IR (LWIR) and mid-wavelength IR (MWIR) signals from objects as they propagate through the air. We analysed the spectral properties of the resonance peaks by comparing the wavelength of the MP peak calculated using the finite-difference time-domain method with that obtained by utilizing an inductor–capacitor circuit model. We evaluated the dependence of the performance of the dual-band metamaterial perfect absorber on the incident angle of light at the surface. The proposed absorber was able to reduce the scattering of 1.54 μm IR laser light by more than 90% and suppress the MWIR and LWIR signatures by more than 92%, as well as maintain MWIR and LWIR signal reduction rates greater than 90% across a wide temperature range from room temperature to 500 °C.
机译:我们提出一种具有金属-绝缘体-金属结构(MIM)的双频超材料完美吸收体,用于红外(IR)隐身技术。我们将MIM结构设计为在1.54μm和6.2μm处分别具有表面等离子体激元(SPP)和磁极化(MP)共振峰。一个峰值抑制激光制导导弹使用的散射信号,而另一个峰值与大气吸收带相匹配,从而能够抑制来自物体的长波红外(LWIR)和中波红外(MWIR)信号在它们通过雷达传播时受到抑制。空气。通过比较使用有限差分时域方法计算出的MP峰的波长与利用电感-电容器电路模型获得的MP峰的波长,我们分析了谐振峰的光谱特性。我们评估了双带超材料完美吸收体的性能对表面光入射角的依赖性。所提出的吸收器能够将1.54μm红外激光的散射减少90%以上,并将MWIR和LWIR信号抑制超过92%,并且在宽范围内保持MWIR和LWIR信号衰减率大于90%。温度范围从室温到500C。

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