Wang Yuxiang, Yuan Yueyi, Yang Guohui, Ding Xumin, Wu Qun, Jiang Yannan, Burokur Shah Nawaz, Zhang Kuang
Department of Microwave Engineering, Harbin Institute of Technology, Harbin 150001, China.
Advanced Microscopy and Instrumentation Research Center, Harbin Institute of Technology, 150080 Harbin, China.
ACS Appl Mater Interfaces. 2022 Apr 13;14(14):16856-16865. doi: 10.1021/acsami.2c00742. Epub 2022 Mar 31.
Phase-gradient metasurfaces (PGMs) constitute an efficient platform for deflection of a beam in a desired direction. According to the generalized Snell's law, the direction of the reflected/refracted wave can be tuned by the spatial phase function provided by the PGMs. However, most studies on PGM focus only on a single diffraction order, that is, the incident wave can be reflected or refracted to a single target direction. Even in the case of multiple beams pointing in different directions, the beams are still in the same order mode, and the energy carried by different beams cannot be controlled. In addition, the energy ratio of multiple beams is generally uncontrollable. Here, we propose a general method to perfectly control diffraction patterns based on a multi-beam PGM. An analytical solution for arbitrarily controlling diffraction beams is derived through which the generation and energy distribution in high-order diffraction beams can be achieved. Three metasurfaces with different diffraction orders and energy ratios are designed and fabricated to demonstrate the proposed method. The efficiencies of diffraction for the desired channels are close to 100%. The simulated and measured far-field patterns are in good agreement with theoretical predictions, validating the proposed method that provides a new way to design multi-beam antennas and that has significance in wireless communication applications.
相位梯度超表面(PGMs)构成了一个能将光束偏转到所需方向的高效平台。根据广义斯涅尔定律,反射/折射波的方向可由PGMs提供的空间相位函数进行调控。然而,大多数关于PGMs的研究仅聚焦于单一衍射级次,即入射波只能被反射或折射到单一目标方向。即便在多光束指向不同方向的情况下,这些光束仍处于同一级次模式,且不同光束携带的能量无法得到控制。此外,多光束的能量比通常也无法控制。在此,我们提出一种基于多光束PGM完美控制衍射图样的通用方法。通过推导任意控制衍射光束的解析解,可实现高阶衍射光束的产生及其能量分布。设计并制作了具有不同衍射级次和能量比的三种超表面来演示所提出的方法。所需通道的衍射效率接近100%。模拟和测量的远场图样与理论预测高度吻合,验证了所提出的方法,该方法为设计多光束天线提供了一种新途径,在无线通信应用中具有重要意义。