School of Computing, Engineering and the Built Environment, Edinburgh Napier University, Edinburgh, EH10 5DT, UK.
Department of Electrical Engineering, College of Engineering, Princess Nourah Bint Abdulrahman University, P.O. Box 84428, Riyadh, 11671, Saudi Arabia.
Sci Rep. 2023 Mar 13;13(1):4179. doi: 10.1038/s41598-023-31407-z.
This paper introduces a multi-input multiple-output (MIMO) antenna array system that provides improved radiation diversity for multi-standard/multi-mode 5G communications. The introduced MIMO design contains four pairs of miniaturized self-complementary antennas (SCAs) fed by pairs of independently coupled structures which are symmetrically located at the edge corners of the smartphone mainboard with an overall size of 75 × 150 (mm). Hence, in total, the design incorporates four pairs of horizontally and vertically polarized resonators. The elements have compact profiles and resonate at 3.6 GHz, the main candidate bands of the sub-6 GHz 5G spectrum. In addition, despite the absence of decoupling structures, adjacent elements demonstrate high isolation. To the best of the authors' knowledge, it is the first type of smartphone antenna design using dual-polarized self-complementary antennas that could possess anti-interference and diversity properties. In addition to exhibiting desirable radiation coverage, the presented smartphone antenna also supports dual polarizations on different sides of the printed circuit board (PCB). It also exhibits good isolation, high-gain patterns, improved radiation coverage, low ECC/TARC, and sufficient channel capacity. The introduced antenna design was manufactured on a standard smartphone board and its main characteristics were experimentally measured. Simulations and measurement results are generally in good agreement with each other. Moreover, the presented antenna system delivers low SAR with adequate efficiency when it comes to the appearance of the user. Hence, the design could be adapted to 5G hand-portable devices. As an additional feature, a new ultra-compact phased array millimeter-wave antenna with super-wide bandwidth and end-fire radiation is being introduced for integration into the MIMO antenna systems. As a result, the proposed antenna system design with improved radiation and multi-standard operation is a good candidate for future multi-mode 5G cellular applications.
本文介绍了一种多输入多输出(MIMO)天线阵列系统,为多标准/多模式 5G 通信提供了改进的辐射分集。所介绍的 MIMO 设计包含四对小型自互补天线(SCA),由两对对称位于智能手机主板边缘角落的独立耦合结构馈电,总体尺寸为 75×150(mm)。因此,总共设计了四对水平和垂直极化的谐振器。这些元件具有紧凑的外形,在 3.6GHz 处谐振,这是 sub-6GHz 5G 频谱的主要候选频段。此外,尽管没有去耦结构,但相邻元件的隔离度很高。据作者所知,这是首次使用双极化自互补天线的智能手机天线设计,可能具有抗干扰和分集性能。除了具有理想的辐射覆盖范围外,所提出的智能手机天线还支持在印刷电路板(PCB)的不同侧使用双极化。它还具有良好的隔离度、高增益模式、改进的辐射覆盖范围、低 ECC/TARC 和足够的信道容量。所提出的天线设计是在标准智能手机板上制造的,并对其主要特性进行了实验测量。仿真和测量结果通常彼此吻合良好。此外,当涉及到用户的外观时,所提出的天线系统具有低 SAR 和足够的效率。因此,该设计可以适应 5G 手持设备。作为附加功能,正在引入一种新的超紧凑相控阵毫米波天线,具有超宽带宽和端射辐射,以集成到 MIMO 天线系统中。因此,具有改进辐射和多标准操作的建议天线系统设计是未来多模式 5G 蜂窝应用的良好候选方案。