Beamforming Analysis and Design for Wideband THz Reconfigurable Intelligent Surface Communications
Wencai Yan, Wanming Hao, Chongwen Huang, Gangcan Sun, Osamu Muta,, Haris Gacanin, Chau Yuen

TL;DR
This paper investigates the beam split problem in wideband THz RIS communications and proposes a joint optimization scheme using hybrid beamforming and distributed RIS deployment to enhance system capacity.
Contribution
It introduces a novel joint optimization framework for hybrid beamforming and RIS reflection coefficients to mitigate beam split effects in wideband THz RIS systems.
Findings
The proposed scheme effectively alleviates the beam split effect.
Simulation results show improved system capacity.
The method outperforms existing approaches in THz RIS communications.
Abstract
Reconfigurable intelligent surface (RIS)-aided terahertz (THz) communications have been regarded as a promising candidate for future 6G networks because of its ultra-wide bandwidth and ultra-low power consumption. However, there exists the beam split problem, especially when the base station (BS) or RIS owns the large-scale antennas, which may lead to serious array gain loss. Therefore, in this paper, we investigate the beam split and beamforming design problems in the THz RIS communications. Specifically, we first analyze the beam split effect caused by different RIS sizes, shapes and deployments. On this basis, we apply the fully connected time delayer phase shifter hybrid beamforming architecture at the BS and deploy distributed RISs to cooperatively mitigate the beam split effect. We aim to maximize the achievable sum rate by jointly optimizing the hybrid analog/digital beamforming,…
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Taxonomy
TopicsAdvanced Wireless Communication Technologies · Antenna Design and Analysis · Millimeter-Wave Propagation and Modeling
