All‐Dielectric Integrated Meta‐Antenna Operating in 6G Terahertz Communication Window

Author:

Shi Jia123ORCID,Li Meiling1,Tang Longhuang4,Li Xianguo1,Jia Xing4,Guo Cuijuan1,Bai Hua1,Ma Heli4,Wang Xiang4,Niu Pingjuan1,Weng Jidong4,Yao Jianquan2

Affiliation:

1. Tianjin Key Laboratory of Optoelectronic Detection Technology and System School of Electronic and Information Engineering Tiangong University Tianjin 300387 China

2. Key Laboratory of Opto‐Electronics Information Technology (Ministry of Education) School of Precision Instruments and Opto‐Electronic Engineering Tianjin University Tianjin 300072 China

3. National Mobile Communications Research Laboratory Southeast University Nanjing 210096 China

4. Institute of Fluid Physics China Academy of Engineering Physics Mianyang 621900 China

Abstract

AbstractEfficient transceivers and antennas at terahertz frequencies are leading the development of 6G terahertz communication systems. The antenna design for high‐resolution terahertz spatial sensing and communication remains challenging, while emergent metallic metasurface antennas can address this issue but often suffer from low efficiency and complex manufacturing. Here, an all‐dielectric integrated meta‐antenna operating in 6G terahertz communication window for high‐efficiency beam focusing in the sub‐wavelength scale is reported. With the antenna surface functionalized by metagrating arrays with asymmetric scattering patterns, the design and optimization methods are demonstrated with a physical size constraint. The highest manipulation and diffraction efficiencies achieve 84.1% and 48.1%. The commercially accessible fabrication method with low cost and easy to implement has been demonstrated for the meta‐antenna by photocuring 3D printing. A filamentous focal spot is measured as 0.86λ with a long depth of focus of 25.3λ. Its application for integrated imaging and communication has been demonstrated. The proposed technical roadmap provides a general pathway for creating high‐efficiency integrated meta‐antennas with great potential in high‐resolution 6G terahertz spatial sensing and communication applications.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Tianjin Municipality

Publisher

Wiley

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