Energy Efficient Wireless Communications by Harnessing Huygens’ Metasurfaces

Maryam Rezvani;Raviraj Adve;Akram Bin Sediq;Amr El-Keyi
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Abstract

Ambitions for the next generation of wireless communication include high data rates, low latency, ubiquitous access, ensuring sustainability (in terms of consumption of energy and natural resources), all while maintaining a reasonable level of implementation complexity. Achieving these goals necessitates reforms in cellular networks, specifically in the physical layer and antenna design. The deployment of transmissive metasurfaces at basestations (BSs) presents an appealing solution, enabling beamforming in the radiated wave domain, minimizing the need for energy-hungry RF chains. Among various metasurface-based antenna designs, we propose using Huygens’ metasurface-based antennas (HMAs) at BSs. Huygens’ metasurfaces offer an attractive solution for antennas because, by utilizing Huygens’ equivalence principle, they allow independent control over both the amplitude and phase of the transmitted electromagnetic wave. In this paper, we investigate the fundamental limits of HMAs in wireless networks by integrating electromagnetic theory and information theory within a unified analytical framework. Specifically, we model the unique electromagnetic characteristics of HMAs and incorporate them into an information-theoretic optimization framework to determine their maximum achievable sum rate. By formulating an optimization problem that captures the impact of HMA’s hardware constraints and electromagnetic properties, we quantify the channel capacity of HMA-assisted systems. We then compare the performance of HMAs against phased arrays and other metasurface-based antennas in both rich scattering and realistic 3GPP channels, highlighting their potential in improving spectral and energy efficiency.
利用惠更斯的超表面进行节能无线通信
下一代无线通信的目标包括高数据速率、低延迟、无处不在的访问、确保可持续性(就能源和自然资源的消耗而言),同时保持合理的实现复杂性。实现这些目标需要对蜂窝网络进行改革,特别是在物理层和天线设计方面。在基站(BSs)部署发射超表面提供了一个吸引人的解决方案,实现了辐射波域的波束成形,最大限度地减少了对耗能RF链的需求。在各种基于超表面的天线设计中,我们建议在BSs使用惠更斯的超表面天线(HMAs)。惠更斯的超表面为天线提供了一个有吸引力的解决方案,因为通过利用惠更斯等效原理,它们允许对传输电磁波的振幅和相位进行独立控制。在本文中,我们通过在统一的分析框架内整合电磁理论和信息论来研究无线网络中HMAs的基本限制。具体而言,我们建立了hma独特的电磁特性模型,并将其纳入信息论优化框架,以确定其最大可实现的求和速率。通过制定一个优化问题,捕捉HMA硬件约束和电磁特性的影响,我们量化了HMA辅助系统的信道容量。然后,我们比较了HMAs与相控阵和其他基于超表面的天线在丰富散射和现实3GPP信道中的性能,强调了它们在提高频谱和能量效率方面的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
8.20
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