Kim Kyounghwan, Phon Ratanak, Park Eiyong, Lim Sungjoon
Department of Intelligent Semiconductor Engineering, Chung-Ang University, Seoul, 06974, Republic of Korea.
Department of Electrical and Computer Engineering, Stevens Institute of Technology, Hoboken, NJ 07030, USA.
Microsyst Nanoeng. 2024 Oct 29;10(1):157. doi: 10.1038/s41378-024-00795-1.
Recently, intelligent reflecting surfaces (IRSs) have emerged as potential candidates for overcoming the line-of-sight issue in 5 G/6 G wireless communication. These IRSs can manipulate the direction of reflected beams, enabling efficient beam steering to enhance the performance of wireless communication. Each unit cell (or unit structure) of an IRS commonly consists of electrical elements for phase modulation. However, by employing phase modulation alone, an IRS can steer the reflected electromagnetic waves toward only discrete and specific angles, leaving a wide range of out-of-beam areas. In this work, an IRS that uses both phase modulation and space modulation is presented to improve the beam resolution and continuously cover out-of-beam areas that phase modulation alone cannot address. A positive-intrinsic-negative diode is mounted on a unit cell for phase modulation, and a 4D-printed reconfigured structure is fabricated to demonstrate space modulation. The beam-steering function is achieved by alternating the states of the diodes in the same columns, while the beam resolution is improved by controlling the gaps between the columns. The functions are first theoretically and numerically analyzed and then experimentally verified, demonstrating that additional angles of -46°/+50°, -22°/+14°, and -16°/+12° are achieved with space modulation and -60°/+62°, -30°/+22°, and ±16° are achieved by phase modulation alone. The proposed IRS offers the possibility of functional integration in a variety of indoor applications within the wireless communication field.
最近,智能反射面(IRS)已成为克服5G/6G无线通信中视线问题的潜在候选方案。这些IRS可以操纵反射波束的方向,实现高效的波束转向,从而提高无线通信的性能。IRS的每个单元(或单元结构)通常由用于相位调制的电气元件组成。然而,仅通过采用相位调制,IRS只能将反射的电磁波导向离散的特定角度,从而留下大范围的波束外区域。在这项工作中,提出了一种同时使用相位调制和空间调制的IRS,以提高波束分辨率并连续覆盖仅靠相位调制无法解决的波束外区域。一个正-本征-负二极管安装在用于相位调制的单元上,并制造了一个4D打印的可重构结构来演示空间调制。通过交替同一列中二极管的状态来实现波束转向功能,同时通过控制列之间的间隙来提高波束分辨率。首先对这些功能进行了理论和数值分析,然后进行了实验验证,结果表明,通过空间调制可实现额外的-46°/+50°、-22°/+14°和-16°/+12°角度,仅通过相位调制可实现-60°/+62°、-30°/+22°和±16°角度。所提出的IRS为无线通信领域内各种室内应用中的功能集成提供了可能性。