All‐Dielectric Terahertz Metasurfaces for Multi‐Dimensional Multiplexing and Demultiplexing

Author:

Liu Wanying1,Jiang Xiaohan1,Xu Quan1,Huang Fan1,Yang Quanlong2,Lu Yongchang1,Gu Yangfan1,Gu Jianqiang1ORCID,Han Jiaguang13,Zhang Weili4

Affiliation:

1. Center for Terahertz Waves and College of Precision Instrument and Optoelectronics Engineering Key Laboratory of Optoelectronic Information Technology Ministry of Education Tianjin University Tianjin 300072 P. R. China

2. Hunan Key Laboratory of Nanophotonics and Devices School of Physics and Electronics Central South University Changsha Hunan 410083 P. R. China

3. Guangxi Key Laboratory of Optoelectronic Information Processing School of Optoelectronic Engineering Guilin University of Electronic Technology Guilin 541004 P. R. China

4. School of Electrical and Computer Engineering Oklahoma State University Stillwater OK 74078 USA

Abstract

AbstractTerahertz (THz) communication is an up‐and‐coming technology for the sixth‐generation wireless network. The realization of ultra‐high‐speed THz communication requires the combination of multi‐dimensional multiplexing schemes, including polarization division multiplexing (PDM), mode division multiplexing (MDM), and wavelength division multiplexing, to increase channel capacity. However, most existing devices for MDM in the THz regime are single‐purpose and incapable of multi‐dimensional modulation. Here, all‐dielectric metasurfaces are designed for 2D multiplexing/demultiplexing, which takes the lead in combining orbital angular momentum (OAM) MDM and PDM in the THz regime. The multi‐functional wavefront phase modulations and interleaved meta‐atom arrangements are used to realize polarization‐selective multichannel OAM mode (de)multiplexing, in which the linear‐polarized 4‐channel and circular‐polarized 6‐channel demultiplexing are experimentally demonstrated. Between different linear‐polarized channels, the measured maximum crosstalk is −16.88 dB, and the isolation of each channel can be greater than 10 dB in a range wider than 0.1 THz. This study paves the way for multi‐dimensional multiplexing in the THz regime, which may benefit extremely high‐capacity and integrated THz communication systems. The proposed design strategy is readily applied to multi‐functional metasurfaces for microwaves and far infrared light, facilitating the development of multiplexing technology and OAM‐related applications.

Funder

National Natural Science Foundation of China

National Science Foundation

Publisher

Wiley

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