Full-Space Wavefront Shaping of Broadband Vortex Beam with Switchable Terahertz Metasurface Based on Vanadium Dioxide.

Nanomaterials (Basel)

Key Laboratory of Engineering Dielectric and Applications, Ministry of Education, School of Electrical and Electronic Engineering, Harbin University of Science and Technology, Harbin 150080, China.

Published: November 2023

AI Article Synopsis

  • Vortex beams are increasingly used in communication systems for data transmission and storage, but traditional terahertz metasurfaces limit their practical applications by only generating narrowband vortex beams.
  • Researchers propose a new design for terahertz metasurface unit cells using advanced materials, allowing for wide-frequency control and full-space vortex beam generation.
  • The new metasurfaces can produce various types of vortex beams, making them suitable for enhancing the capabilities of 6G terahertz communications, including long-distance transmission and high data capacity.

Article Abstract

Currently, vortex beams are extensively utilized in the information transmission and storage of communication systems due to their additional degree of freedom. However, traditional terahertz metasurfaces only focus on the generation of narrowband vortex beams in reflection or transmission mode, which is unbeneficial for practical applications. Here, we propose and design terahertz metasurface unit cells composed of anisotropic -shaped metal structures, two dielectric layers, and a VO film layer. By utilizing the Pancharatnam-Berry phase theory, independent control of a full 2π phase over a wide frequency range can be achieved by rotating the unit cell. Moreover, the full-space mode (transmission and reflection) can also be implemented by utilizing the phase transition of VO film. Based on the convolution operation, three different terahertz metasurfaces are created to generate vortex beams with different wavefronts in full-space, such as deflected vortex beams, focused vortex beams, and non-diffraction vortex beams. Additionally, the divergences of these vortex beams are also analyzed. Therefore, our designed metasurfaces are capable of efficiently shaping the wavefronts of broadband vortex beams in full-space, making them promising applications for long-distance transmission, high integration, and large capacity in 6G terahertz communications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10708078PMC
http://dx.doi.org/10.3390/nano13233023DOI Listing

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