Path Loss Modeling and Measurements for Reconfigurable Intelligent Surfaces in the Millimeter-Wave Frequency Band
arXiv:2101.08607 · doi:10.1109/TCOMM.2022.3193400
Abstract
Reconfigurable intelligent surfaces (RISs) provide an interface between the electromagnetic world of wireless propagation environments and the digital world of information science. Simple yet sufficiently accurate path loss models for RISs are an important basis for theoretical analysis and optimization of RIS-assisted wireless communication systems. In this paper, we refine our previously proposed free-space path loss model for RISs to make it simpler, more applicable, and easier to use. The impact of the antenna's directivity of the transmitter, receiver, and the unit cells of the RIS on the path loss is explicitly formulated as an angle-dependent loss factor. The refined model gives more accurate estimates of the path loss of RISs comprised of unit cells with a deep sub-wavelength size. Based on the proposed model, the properties of a single unit cell are evaluated in terms of scattering performance, power consumption, and area, which allows us to unveil fundamental considerations for deploying RISs in high frequency bands. Two fabricated RISs operating in the millimeter-wave (mmWave) band are utilized to carry out a measurement campaign. The measurement results are shown to be in good agreement with the proposed path loss model. In addition, the experimental results suggest an effective form to characterize the power radiation pattern of the unit cell for path loss modeling.
Model refinements are introduced to previously proposed free-space path loss model for RISs in order to make it simpler and easier to use. The properties of a single unit cell are evaluated in terms of scattering performance, power, and area, as it is the basic element of an RIS. We report the world's first measurement campaign in the mmWave frequency band to validate the path loss model for RISs
References in corpus (3)
Cited by in corpus (19)
- Foundations of MIMO Radar Detection Aided by Reconfigurable Intelligent Surfaces
- Performance Analysis of Reconfigurable Holographic Surfaces in the Near-Field Scenario of Cell-Free Networks Under Hardware Impairments
- Reradiation and Scattering from a Reconfigurable Intelligent Surface: A General Macroscopic Model
- On Channel Reciprocity in Reconfigurable Intelligent Surface Assisted Wireless Network
- Joint Localization and Environment Sensing by Harnessing NLOS Components in RIS-aided mmWave Communication Systems
- Energy-Efficient Reconfigurable Holographic Surfaces Operating in the Presence of Realistic Hardware Impairments
- Channel Customization for Joint Tx-RISs-Rx Design in Hybrid mmWave Systems
- Stacked Intelligent Metasurfaces for Multiuser Downlink Beamforming in the Wave Domain
- Distributed Reconfigurable Intelligent Surfaces for Energy Efficient Indoor Terahertz Wireless Communications
- On the Maximum Achievable Sum-rate of the RIS-aided MIMO Broadcast Channel
- Efficient Synthesis of Passively Loaded Finite Arrays for Tunable Anomalous Reflection
- Modeling and Measurements for Multi-path Mitigation with Reconfigurable Intelligent Surfaces
- Towards Real-World Indoor Smart Electromagnetic Environments -- A Large-Scale Experimental Demonstration
- Modeling RIS from Electromagnetic Principles to Communication Systems--Part I: Synthesis and Characterization of a Scalable Anomalous Reflector
- Toward Autonomous Reconfigurable Intelligent Surfaces Through Wireless Energy Harvesting
- On the Achievable Sum-rate of the RIS-aided MIMO Broadcast Channel
- Wireless Environmental Information Theory: A New Paradigm towards 6G Online and Proactive Environment Intelligence Communication
- A Fingerprint Database Generation Method for RIS-Assisted Indoor Positioning
- Joint Phase Shift Optimization and Precoder Selection for RIS-Assisted 5G NR MIMO Systems