Melouki Noureddine, Ahmed Fahad, PourMohammadi Peyman, Naseri Hassan, Bizan Mohamed Sedigh, Iqbal Amjad, Denidni Tayeb A
Centre-Energie Matériaux et Télécommunications, Institut National de la Recherche Scientifique, Montreal, QC H5A 1K6, Canada.
Sensors (Basel). 2024 Apr 29;24(9):2826. doi: 10.3390/s24092826.
In this paper, a 3D conformal meta-lens designed for manipulating electromagnetic beams via height-to-phase control is proposed. The structure consists of a 40 × 20 array of tunable unit cells fabricated using 3D printing, enabling full 360° phase compensation. A novel automatic synthesizing method (ASM) with an integrated optimization process based on genetic algorithm (GA) is adopted here to create the meta-lens. Simulation using CST Microwave Studio and MATLAB reveals the antenna's beam deflection capability by adjusting phase compensations for each unit cell. Various beam scanning techniques are demonstrated, including single-beam, dual-beam generation, and orbital angular momentum (OAM) beam deflection at different angles of 0°, 10°, 15°, 25°, 30°, and 45°. A 3D-printed prototype of the dual-beam feature has been fabricated and measured for validation purposes, with good agreement between both simulation and measurement results, with small discrepancies due to 3D printing's low resolution and fabrication errors. This meta-lens shows promise for low-cost, high-gain beam deflection in mm-wave wireless communication systems, especially for sensing applications, with potential for wider 2D beam scanning and independent beam deflection enhancements.
本文提出了一种通过高度到相位控制来操纵电磁束的三维共形超透镜。该结构由40×20的可调谐单元阵列组成,采用3D打印制造,可实现360°全相位补偿。这里采用了一种基于遗传算法(GA)的具有集成优化过程的新型自动合成方法(ASM)来制造超透镜。使用CST微波工作室和MATLAB进行的模拟通过调整每个单元的相位补偿揭示了天线的波束偏转能力。展示了各种波束扫描技术,包括单波束、双波束生成以及在0°、10°、15°、25°、30°和45°不同角度的轨道角动量(OAM)波束偏转。为了验证目的,制作并测量了双波束特征的3D打印原型,模拟和测量结果之间具有良好的一致性,由于3D打印的低分辨率和制造误差存在小的差异。这种超透镜在毫米波无线通信系统中的低成本、高增益波束偏转方面显示出前景,特别是对于传感应用,具有实现更宽二维波束扫描和独立波束偏转增强的潜力。