Jiang Xiaoqiang, Fan Wenhui, Qin Chong, Chen Xu
State Key Laboratory of Transient Optics and Photonics, Xi'an Institute of Optics and Precision Mechanics, Chinese Academy of Sciences, Xi'an 710119, China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing 100049, China.
Nanomaterials (Basel). 2021 Oct 29;11(11):2895. doi: 10.3390/nano11112895.
Recently, terahertz (THz) wireless communication has been widely investigated as the future prospect of wireless network architecture. However, most of the natural existing materials are inapplicable for THz devices, which hinder their further development. To promote the integration and channel capacity of the THz wireless communication systems, an ultrabroadband polarization conversion metasurface for efficient multi-functional wavefront manipulation is proposed. The designed metasurface is composed of an arrow-type structure sandwiched by a pair of orthogonal gratings, which can induce the Fabry-Pérot-like cavity for improving the transmission. Simulated results indicate that the transmission coefficient of the cross-polarization metasurface is higher than 90% from 0.73 THz to 2.24 THz, and the corresponding polarization conversion ratio is greater than 99.5%. Moreover, the phase coverage of 0-2π at operation frequency can be easily obtained by altering the geometric parameter of the metasurface. To demonstrate the concept of wavefront manipulation, anomalous refraction, focusing metalens, and vortex beam generation are investigated in detail. All of these applications exhibit a remarkable performance of the proposed metasurface that has great potential in prompting the efficient, broadband and compact systems for THz wireless communication.
近年来,太赫兹(THz)无线通信作为无线网络架构的未来前景受到了广泛研究。然而,大多数天然存在的材料不适用于太赫兹设备,这阻碍了它们的进一步发展。为了提高太赫兹无线通信系统的集成度和信道容量,提出了一种用于高效多功能波前操控的超宽带偏振转换超表面。所设计的超表面由夹在一对正交光栅之间的箭型结构组成,该结构可以诱导类似法布里 - 珀罗腔以提高传输。模拟结果表明,交叉偏振超表面在0.73太赫兹至2.24太赫兹范围内的传输系数高于90%,相应的偏振转换率大于99.5%。此外,通过改变超表面的几何参数可以轻松获得工作频率下0 - 2π的相位覆盖。为了演示波前操控的概念,对反常折射、聚焦金属透镜和涡旋光束产生进行了详细研究。所有这些应用都展示了所提出超表面的卓越性能,其在推动高效、宽带和紧凑的太赫兹无线通信系统方面具有巨大潜力。