Guo Yinghui, Yan Lianshan, Pan Wei, Shao Liyang
Center for Information Photonics &Communications, School of Information Science &Technology, Southwest Jiaotong University, Chengdu, Sichuan, 610031, China.
Sci Rep. 2016 Jul 21;6:30154. doi: 10.1038/srep30154.
The control of electromagnetic waves scattering is critical in wireless communications and stealth technology. Discrete metasurfaces not only increase the design and fabrication complex but also cause difficulties in obtaining simultaneous electric and optical functionality. On the other hand, discontinuous phase profiles fostered by discrete systems inevitably introduce phase noises to the scattering fields. Here we propose the principle of a scattering-harness mechanism by utilizing continuous gradient phase stemming from the spin-orbit interaction via sinusoidal metallic strips. Furthermore, by adjusting the amplitude and period of the sinusoidal metallic strip, the scattering characteristics of the underneath object can be greatly changed and thus result in electromagnetic illusion. The proposal is validated by full-wave simulations and experiment characterization in microwave band. Our approach featured by continuous phase profile, polarization independent performance and facile implementation may find widespread applications in electromagnetic wave manipulation.
电磁波散射的控制在无线通信和隐身技术中至关重要。离散超表面不仅增加了设计和制造的复杂性,而且在实现同时具备电学和光学功能方面也存在困难。另一方面,离散系统所产生的不连续相位分布不可避免地会给散射场引入相位噪声。在此,我们提出一种散射控制机制的原理,即利用通过正弦形金属条的自旋 - 轨道相互作用产生的连续梯度相位。此外,通过调整正弦形金属条的幅度和周期,可以极大地改变其下方物体的散射特性,从而产生电磁幻象。该方案通过全波模拟和微波频段的实验表征得到了验证。我们的方法具有连续相位分布、偏振无关性能以及易于实现等特点,可能在电磁波操控方面得到广泛应用。