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Graphene-based spatial light modulator using optical checkerboard AMC metasurface

机译:基于石墨烯的空间光调制,使用光学棋盘AMC MEDasurface

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摘要

Spatial light modulators (SLMs) based on graphene have been intensively studied in recent decades. Artificial magnetic conductors (AMCs), which are usually applied to radar cross section (RCS) reduction in microwave regions, can have arbitrary reflected phase while that of perfect electric conductor (PEC) is 180 degrees in general. Herein, we first demonstrate a graphene-based SLM assisted by checkerboard-like AMC metasurface that operates switchable destructive and constructive interferences. Two AMC structures were designed to have the same reflected amplitude but a phase difference of 180 degrees, leading to the cancelation of light at the superposition areas in spatial domain. The main beam of manipulated light was split to several different directions so that the received signal was modulated to minimum value, which could be referred to 'off' state. Through gating the Fermi level of monolayer graphene below the AMC metasurface, the phase difference could be adjusted to 0 degrees while the amplitude difference remained nearly unchanged. Therefore, the constructive interference was formed and contributed to the maximum reflection, achieving the 'on' state. Numerical simulations indicated that modulation depth higher than 10 dB was achieved when the Fermi level of graphene was gated to 0.1 eV. The depth kept rising with the increase of Fermi level and got a maximum value of 32 dB at 1 eV. The proposed checkerboard design provides a novel method to manipulate spatial light for modulators, imaging and optical clocking.
机译:基于石墨烯的空间光调制器(SLM)已被广泛研究在近几十年来。人工磁导体(AMCS),其通常适用于横截面(RCS)减少雷达在微波区域,可以具有任意的反射相而理想导体(PEC)的是在一般的180度。在此,我们首先证明由操作切换破坏性和建设性的干扰棋盘般的AMC超颖协助了基于石墨烯的SLM。设计两个AMC结构具有相同的反射振幅但具有180度的相位差,从而导致光的消除在空间域中的叠加区域。操纵光的主光束被分流至几个不同的方向,以使接收信号被调制到最小值,这可能被称为“关闭”状态。通过门控的AMC超颖低于单层石墨烯的费米能级,而幅度差保持基本不变的相位差可以调整为0度。因此,形成建设性干涉,并有助于最大反射,实现“打开”状态。数值模拟表明,调制深度高于当石墨烯的费米能级被选通到0.1eV的10分贝达到了。深度保持与费米能级的增加上升,在1伏特得到了32分贝最大值。所提出的棋盘设计提供,以操作调节剂,成像和光学时钟空间光的新方法。

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