论文标题
可重构全息表面:实施全息广播的新范式
Reconfigurable Holographic Surface: A New Paradigm to Implement Holographic Radio
论文作者
论文摘要
超质量多输入多输出(MIMO)是即将到来的6G网络中通过利用空间多样性提供高速数据服务的关键推动力之一。在本文中,我们考虑了一种新的范式,称为超质量mimo的全息无线电,其中集成了许多微小且廉价的天线元素,以实现高指令增益,并以低硬件成本来实现。我们提出了一种实用的方法,可以通过一种基于跨表面的天线(即可重新配置的全息表面(RHS))启用全息无线电。具体而言,结合了密集的可调超材料元件的RHS能够全息构成。根据RHSS的工作原理和硬件设计,我们对RHSS进行全波分析,并构建了支持实时数据传输的RHS辅助点对点通信平台。模拟和实验结果均表明,RHS具有很大的潜力,可以实现有限的大小,从而证实了具有RHS的全息无线电的可行性。此外,还讨论了支持RHS全息无线电的未来研究方向。
Ultra-massive multiple-input multiple-output (MIMO) is one of the key enablers in the forthcoming 6G networks to provide high-speed data services by exploiting spatial diversity. In this article, we consider a new paradigm termed holographic radio for ultra-massive MIMO, where numerous tiny and inexpensive antenna elements are integrated to realize high directive gain with low hardware cost. We propose a practical way to enable holographic radio by a novel metasurface-based antenna, i.e., reconfigurable holographic surface (RHS). Specifically, RHSs incorporating densely packed tunable metamaterial elements are capable of holographic beamforming. Based on the working principle and hardware design of RHSs, we conduct full-wave analyses of RHSs and build an RHS-aided point-to-point communication platform supporting real-time data transmission. Both simulated and experimental results show that the RHS has great potential to achieve high directive gain with a limited size, thereby substantiating the feasibility of RHS-enabled holographic radio. Moreover, future research directions for RHS-enabled holographic radio are also discussed.