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A Hybrid Intelligent Reflecting Surface with Graphene-based Control Elements for THz Communications

机译:具有基于石墨烯的控制元件的混合智能反射表面,用于太赫兹通信

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Terahertz (THz)-band (0.1-10 THz) communication is envisioned as a key wireless technology to fulfill the demand for increasing data rates and to accommodate denser networks. The THz-band, however, suffers from very high propagation losses further aggravated by the presence of obstacles in common scenarios, that behave as opaque barriers at THz frequencies. Engineering non-line-of-sight (NLoS) communication links with-smart reflectarrays is one possible method of overcoming the complex THz communication model. However, existing reflectarray designs at lower frequencies cannot be simply repurposed due to the operating failure of the traditional control elements at THz frequencies. In this direction, the use of 2D nanomaterials, such as graphene, to design tuning elements and integrate these into THz reflectarrays is being explored. This paper presents a novel graphene-based tuning element for continuous phase control of the reflecting element, in situ. The fundamental radiating element is designed to have high reflection efficiency and tunability by leveraging the properties of metals and graphene, respectively. First, the working principle and design of the proposed tuning element, comprised of a graphene-based plasmonic waveguide, is described and explained. Second, the trade-offs in the design of the hybrid tunable reflecting element, resulting from the integration of the tuning element with a metallic patch, are exhaustively studied. After discussing the integration of multiple reflecting elements in a reflectarray, the ability to perform complete continuous dynamic beamforming is presented.
机译:太赫兹(THz)波段(0.1-10 THz)通信被视为一种关键的无线技术,可以满足提高数据速率的需求并适应更密集的网络。然而,太赫兹频带遭受很高的传播损耗,在常见情况下,障碍物的存在会进一步加重传播损耗,这些障碍物在太赫兹频率下表现为不透明的屏障。具有智能反射阵列的工程非视距(NLoS)通信链接是克服复杂的THz通信模型的一种可能方法。然而,由于传统控制元件在太赫兹频率下的操作故障,不能简单地改变现有较低频率的反射阵列设计的用途。在这个方向上,正在探索使用2D纳米材料(例如石墨烯)来设计调谐元件并将其集成到THz反射阵列中。本文提出了一种新颖的基于石墨烯的调谐元件,用于原位连续控制反射元件。通过分别利用金属和石墨烯的特性,将基本辐射元件设计为具有高反射效率和可调性。首先,描述和解释了所建议的调谐元件的工作原理和设计,该调谐元件由基于石墨烯的等离子体波导组成。其次,详尽地研究了混合可调反射元件的设计中的折衷,该折衷是由于调谐元件与金属贴片的集成而产生的。在讨论了反射阵列中多个反射元件的集成之后,介绍了执行完整的连续动态波束形成的能力。

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