Naqvi Aqeel Hussain, Lim Sungjoon
School of Electrical and Electronics Engineering, Chung-Ang University, Seoul, 06974 Republic of Korea.
Microsyst Nanoeng. 2022 Apr 21;8:43. doi: 10.1038/s41378-022-00371-5. eCollection 2022.
The development of multifunctional and reconfigurable metasurfaces capable of manipulating electromagnetic waves has created new opportunities for various exciting applications. Extensive efforts have been applied to exploiting active metasurfaces with properties that can be controlled by externally controlling active components. However, previous approaches have poor switch isolation, power handling limitations due to nonlinear effects, and complex biasing networks. Therefore, dynamically tunable metasurfaces have become a burgeoning field in many research areas. This paper reports a hydrodynamic metasurface (HMS) that can be programmed to realize electromagnetic beam scanning on the azimuth and elevation planes. The proposed HMS platform incorporates four micropumps, each controlling four metasurface elements via microfluidic channels, built into the HMS base. The proposed platform regulates microfluidic flow through micropumps, causing irregularities in incident wave transmission phase. An HMS was built as a proof of concept, and far-field scanning experiments were performed. Numerical and experimental results verify the feasibility of electromagnetic beam scanning using a hydrodynamic metasurface. This work advances metasurface research, with very high potential for wide-ranging application and a promising route for replacing bulky cascading active components.
能够操纵电磁波的多功能可重构超表面的发展为各种令人兴奋的应用创造了新机会。人们已付出大量努力来开发具有可通过外部控制有源组件进行控制的特性的有源超表面。然而,先前的方法存在开关隔离性差、由于非线性效应导致的功率处理限制以及复杂的偏置网络等问题。因此,动态可调谐超表面已成为许多研究领域中一个新兴的领域。本文报道了一种流体动力超表面(HMS),它可以通过编程实现电磁束在方位角和仰角平面上的扫描。所提出的HMS平台包含四个微型泵,每个微型泵通过微流体通道控制四个超表面元件,这些微型泵内置在HMS基座中。所提出的平台通过微型泵调节微流体流动,从而导致入射波传输相位出现不规则变化。构建了一个HMS作为概念验证,并进行了远场扫描实验。数值和实验结果验证了使用流体动力超表面进行电磁束扫描的可行性。这项工作推动了超表面研究的发展,具有广泛应用的极高潜力,并且是替代笨重的级联有源组件的一条有前景的途径。