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Intelligent Reflecting Surfaces for THz Communications: Fundamentals, Key Solutions, and System Prototyping
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Intelligent Reflecting Surfaces for THz Communications: Fundamentals, Key Solutions, and System Prototyping
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Intelligent reflecting surfaces (IRSs) have emerged as a cost-effective technology for terahertz (THz) communications by enabling programmable control of the wireless environment. This paper provides a comprehensive overview of IRSs-aided THz communications, covering hardware designs, advanced signal processing techniques, and practical deployment strategies. It first examines key THz reconfigurable metasurface architectures, including electronic, optical, phase-change material, and micro-electromechanical systems (MEMS)-based implementations, highlighting their reconfiguration mechanisms and challenges. Then, fundamental effects including near field and beam squint in wideband THz systems are analyzed, along with their impacts on system performance. The paper further explores conventional and beam-squint-assisted channel estimation methods, innovative beam management strategies, and deployment considerations across large- and small-scale scenarios. Practical experiments at 220 gigahertz (GHz) validate the effectiveness of IRS in improving signal strength and communication reliability for both single-user and multi-user setups.
Forward citations
Cited by 2 Pith papers
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Engineering Favorable Propagation: Near-Field IRS Deployment for Spatial Multiplexing
Near-field placement of an IRS, with inter-element phase differences aligned to the nulls of the BS array factor, reduces user-channel correlation below 2/M and enables low-complexity spatial multiplexing.
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A Flexible Design for Beam Squint Effect Suppression in IRS-Aided THz Communications
A joint optimization of movable base-station antenna positions and movable IRS subarray positions is proposed to suppress the double beam squint effect in wideband THz MISO systems.
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