Hosseininejad Seyed Ehsan, Rouhi Kasra, Neshat Mohammad, Faraji-Dana Reza, Cabellos-Aparicio Albert, Abadal Sergi, Alarcón Eduard
Department of Electrical Engineering, Yazd University, Yazd, Iran.
School of Electrical and Computer Engineering, University of Tehran, Tehran, Iran.
Sci Rep. 2019 Feb 27;9(1):2868. doi: 10.1038/s41598-019-39266-3.
Recent emergence of metasurfaces has enabled the development of ultra-thin flat optical components through different wavefront shaping techniques at various wavelengths. However, due to the non-adaptive nature of conventional metasurfaces, the focal point of the resulting optics needs to be fixed at the design stage, thus severely limiting its reconfigurability and applicability. In this paper, we aim to overcome such constraint by presenting a flat reflective component that can be reprogrammed to focus terahertz waves at a desired point in the near-field region. To this end, we first propose a graphene-based unit cell with phase reconfigurability, and then employ the coding metasurface approach to draw the phase profile required to set the focus on the target point. Our results show that the proposed component can operate close to the diffraction limit with high focusing range and low focusing error. We also demonstrate that, through appropriate automation, the reprogrammability of the metamirror could be leveraged to develop compact terahertz scanning and imaging systems, as well as novel reconfigurable components for terahertz wireless communications.
超颖表面的最新出现使得通过不同波长下的各种波前整形技术能够开发超薄平面光学元件。然而,由于传统超颖表面的非自适应特性,所得光学器件的焦点需要在设计阶段固定,从而严重限制了其可重构性和适用性。在本文中,我们旨在通过展示一种平面反射元件来克服这种限制,该元件可以重新编程以在近场区域的期望点聚焦太赫兹波。为此,我们首先提出一种具有相位可重构性的基于石墨烯的单元结构,然后采用编码超颖表面方法来绘制将焦点设置在目标点所需的相位分布。我们的结果表明,所提出的元件可以在接近衍射极限的情况下运行,具有高聚焦范围和低聚焦误差。我们还证明,通过适当的自动化,可以利用超颖反射镜的可重构性来开发紧凑的太赫兹扫描和成像系统,以及用于太赫兹无线通信的新型可重构元件。