2-Bit RIS Prototyping Enhancing Rapid-Response Space-Time Wavefront Manipulation for Wireless Communication: Experimental Studies

IF 6.3 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Open Journal of the Communications Society Pub Date : 2024-08-06 DOI:10.1109/OJCOMS.2024.3439558
Yufei Zhao;Yuan Feng;Afkar Mohamed Ismail;Ziyue Wang;Yong Liang Guan;Yongxin Guo;Chau Yuen
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Abstract

Reconfigurable metasurface, also known as Reconfigurable Intelligent Surfaces (RIS), with its flexible beamforming, low-cost, and easy industrial deployment characteristics, presents many interesting solutions in wireless application scenarios. This paper presents a sophisticated reconfigurable metasurface architecture that introduces an advanced concept of flexible full-array space-time wavefront manipulation with enhanced dynamic capabilities. The practical 2-bit phase-shifting unit cell on the RIS is distinguished by its ability to maintain four stable phase states, each with 90° differences, and features an insertion loss of less than 0.6 dB across a bandwidth of 200 MHz. All reconfigurable unit cells are equipped with meticulously designed control circuits, governed by an intelligent core composed of multiple Micro-Controller Units (MCUs), enabling rapid control response across the entire RIS array. Owing to the capability of each unit cell on the metasurface to independently switch states, the entire RIS is not limited to controlling general beams with specific directional patterns but also generates beams with more complex structures, including multi-focus 3D spot beams and vortex beams. This development substantially broadens its applicability across various industrial wireless transmission scenarios. Moreover, by leveraging the rapid-respond space-time coding and the full-array independent programmability of the RIS prototyping operating at 10.7 GHz, we have demonstrated that: 1) The implementation of 3D spot beams scanning facilitates dynamic beam tracking and real-time communication under the indoor near-field scenario; 2) The rapid wavefront rotation of vortex beams enables precise modulation of signals within the Doppler domain, showcasing an innovative approach to wireless signal manipulation; 3) The beam steering experiments for blocking users under outdoor far-field scenarios, verifying the beamforming capability of the RIS board.
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2 位 RIS 原型开发增强了无线通信的快速响应时空波前操纵:实验研究
可重构元表面,又称可重构智能表面(RIS),具有灵活的波束成形、低成本和易于工业部署等特点,为无线应用场景提供了许多有趣的解决方案。本文介绍了一种复杂的可重构元表面架构,该架构引入了灵活的全阵列时空波前操纵的先进理念,具有更强的动态功能。RIS 上的实用 2 位移相单元的特点是能够保持四个稳定的相位状态,每个相位差 90°,并且在 200 MHz 的带宽内插入损耗小于 0.6 dB。所有可重构单元都配备了精心设计的控制电路,由多个微控制器单元(MCU)组成的智能内核对其进行控制,从而实现了对整个 RIS 阵列的快速控制响应。由于元表面上的每个单元都能独立切换状态,因此整个 RIS 不局限于控制具有特定方向模式的普通光束,还能产生结构更复杂的光束,包括多焦点三维光斑光束和涡流光束。这一发展大大拓宽了其在各种工业无线传输应用场景中的适用性。此外,通过利用在 10.7 GHz 频率下运行的 RIS 原型的快速响应时空编码和全阵列独立可编程性,我们已经证明了以下几点:1)三维点波束扫描的实现促进了室内近场场景下的动态波束跟踪和实时通信;2)漩涡波束的快速波前旋转实现了多普勒域内信号的精确调制,展示了无线信号操纵的创新方法;3)室外远场场景下阻挡用户的波束转向实验验证了 RIS 板的波束成形能力。
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来源期刊
CiteScore
13.70
自引率
3.80%
发文量
94
审稿时长
10 weeks
期刊介绍: The IEEE Open Journal of the Communications Society (OJ-COMS) is an open access, all-electronic journal that publishes original high-quality manuscripts on advances in the state of the art of telecommunications systems and networks. The papers in IEEE OJ-COMS are included in Scopus. Submissions reporting new theoretical findings (including novel methods, concepts, and studies) and practical contributions (including experiments and development of prototypes) are welcome. Additionally, survey and tutorial articles are considered. The IEEE OJCOMS received its debut impact factor of 7.9 according to the Journal Citation Reports (JCR) 2023. The IEEE Open Journal of the Communications Society covers science, technology, applications and standards for information organization, collection and transfer using electronic, optical and wireless channels and networks. Some specific areas covered include: Systems and network architecture, control and management Protocols, software, and middleware Quality of service, reliability, and security Modulation, detection, coding, and signaling Switching and routing Mobile and portable communications Terminals and other end-user devices Networks for content distribution and distributed computing Communications-based distributed resources control.
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