Hybrid VO2-graphene bi-functional digital metasurface for beam steering and dual-band absorption
Abstract
The evolution of sixth-generation wireless communications demands advanced metasurfaces capable of precise beam steering and adaptive electromagnetic (EM) wave absorption to enhance signal quality and mitigate interference. In this work, we present a programmable and reconfigurable digital THz-metasurface, engineered through the integration of metal patch, graphene wire grid, and a vanadium dioxide (VO2)-based square ring to switch between dynamic beam steering (ON-state) and EM wave absorption (OFF-state). In the former state, without physically altering the patch dimensions to create a required phase gradient in the metasurface, here the idea of digitally increasing the patch dimensions only by changing the crystallization level of the VO2 ring is proposed. Consequently, a programmable and reconfigurable coding metasurface by digitally changing the arrangement of coding sequence is achieved that can shift the mainlobe of the reflected EM wave from 0° to 40°. Remarkably, in the OFF-state, a dual-band EM wave absorption is observed based on a dual mechanism including tunable crystallinity level of the VO2 ring, and the Fermi energy of the patterned graphene. In addition, in the OFF-state, the performance of the absorber is investigated by increasing the angle of incidence. The results of detailed full-wave simulations are compared and verified by analytical modeling based on an array antenna theory and an equivalent electric circuit model. The presented structure is a strong candidate for integration into future Reconfigurable Intelligent Surfaces platforms, sensing and imaging systems in the THz band.
Article Details
Journal Info
Journal of Applied Physics
American Institute of Physics
Authors (2)
Navid Naghshpour
Faculty of Electrical Engineering, Nano-optics and Nano-photonics Research Lab (NANOP), K. N. Toosi University of Technology , Tehran 1631714191,
Tavakol Pakizeh
Faculty of Electrical Engineering, Nano-optics and Nano-photonics Research Lab (NANOP), K. N. Toosi University of Technology , Tehran 1631714191,