Wang Kaitao, Li Jie, Han Xu, Qu Liyong, Jin Xin, Ran Yuzhou, Geng Yichao, Chen Hanlin, Yi Yun, Zhang Qi, Fu Shangchen, Zhou Wenke, Zhou Kan, Song Ping, Wang Jinbao
Opt Express. 2025 Feb 10;33(3):4314-4328. doi: 10.1364/OE.551599.
Achieving microwave absorbers that combine wideband and excellent absorption performance with high optical transparency remains a significant challenge in the field of radar stealth. In this paper, an ultrawideband metamaterial absorber consisting of double-layer mesh structures and two transparent dielectric layers is proposed. In the absorption layer, an indium tin oxide (ITO) mesh pattern, equivalent to an circuit (series connection of resistance and inductance ) to reduce design complexity, enhances the optical transparency of the absorber when combined with a mesh structure in the shielding layer. The polycarbonate (PC) cover plate is innovatively introduced to adjust the impedance matching, improving the absorbing bandwidth and angular stability. Based on the equivalent circuit model (ECM), optimization of the circuit parameters for the designed unit cell is conducted with the genetic algorithm (GA) and exhibits excellent absorption performance. Simulation and experiment results show that the reflection coefficient of the sample fabricated by the laser etching process is below -20 dB from 7.78 GHz to 12.58 GHz, covering the whole X band and reaching a relative bandwidth of 47.2%. Moreover, the average optical transmittance of the designed absorber is fixed at 81% in the visible region of 400-700 nm. The proposed metamaterial absorber with excellent absorption performance and high optical transparency provides a new avenue for the research and development of stealth and electromagnetic compatibility (EMC).
在雷达隐身领域,实现兼具宽带和优异吸收性能以及高光学透明度的微波吸收器仍然是一项重大挑战。本文提出了一种由双层网状结构和两个透明介电层组成的超宽带超材料吸收器。在吸收层中,一种铟锡氧化物(ITO)网状图案,等效于一个 电路(电阻 和电感 的串联连接)以降低设计复杂性,当与屏蔽层中的网状结构结合时,可提高吸收器的光学透明度。创新性地引入聚碳酸酯(PC)盖板来调整阻抗匹配,拓宽吸收带宽并提高角度稳定性。基于等效电路模型(ECM),使用遗传算法(GA)对设计的单元胞电路参数进行优化,展现出优异的吸收性能。仿真和实验结果表明,通过激光蚀刻工艺制备的样品的反射系数在7.78 GHz至12.58 GHz范围内低于 -20 dB,覆盖整个X波段,相对带宽达到47.2%。此外,所设计吸收器在400 - 700 nm可见光区域的平均光学透过率固定为81%。所提出的具有优异吸收性能和高光学透明度的超材料吸收器为隐身和电磁兼容性(EMC)的研究与开发提供了一条新途径。