Guo Qingxin, Peng Qingyue, Qu Meijun, Su Jianxun, Li Zengrui
Opt Express. 2022 Feb 28;30(5):7793-7805. doi: 10.1364/OE.453357.
An optical transparent metasurface for dual-band Wi-Fi shielding is presented in this paper. The unit cell of the proposed metasurface is composed of a hexagonal ring and a three-petal oval flower which resonate at 2.4 and 5.5 GHz, respectively. The corresponding equivalent circuit is modelled to better understand the physical phenomena of electromagnetic shielding. Based on transmission line theory and curve fitting technique, a convenient and efficient method for extracting permittivity of substrate is presented. Simulation results show that the proposed metasurface is insensitive to the polarization of incoming wave under normal incidence and offers excellent angular stability. For verifying the design, two prototypes are fabricated using different manufacturing technologies, flexible printed circuit and ink-jet printing of silver nano-particles. The measured results are in good agreement with the simulated ones. The proposed metasurface has potential applications of electromagnetic wave suppression and information security in indoor environments.
本文提出了一种用于双频段Wi-Fi屏蔽的光学透明超表面。所提出的超表面的单元结构由一个六边形环和一个分别在2.4 GHz和5.5 GHz处谐振的三瓣椭圆形花组成。对相应的等效电路进行建模,以更好地理解电磁屏蔽的物理现象。基于传输线理论和曲线拟合技术,提出了一种方便有效的提取衬底介电常数的方法。仿真结果表明,所提出的超表面在垂直入射下对入射波的极化不敏感,并具有出色的角度稳定性。为了验证该设计,使用不同的制造技术,即柔性印刷电路和银纳米颗粒的喷墨打印,制作了两个原型。测量结果与模拟结果吻合良好。所提出的超表面在室内环境中具有电磁波抑制和信息安全的潜在应用。