Design and theoretical investigation of a switchable and tunable terahertz absorber based on graphene and vanadium dioxide

Abstract

This work proposes a switchable and tunable asymmetric cross-shaped terahertz metamaterial absorber, which employs a metal-dielectric-metal (MDM) structure, based on graphene and vanadium dioxide. A theoretical analysis of the absorber's absorption characteristics was conducted using the finite-difference time-domain (FDTD) technique, which indicates that the absorption of the absorber can dynamically switch between single band and triple band via VO2 temperature-driven reversible insulator-to-metal phase transition. Specifically, the absorber exhibits single-band absorption above 90% from 1.45 to 4.13 THz in the VO2 insulating state, while it exhibits triple-band absorption above 80% (covering 1.67–3.84, 7.13–8.26, and 12.07–12.75 THz) when VO2 transitions to the metallic state. By tuning VO2's electrical conductivity and graphene's Fermi level, metasurface amplitude can be precisely adjusted. Additionally, impedance matching principles and transmission line theory were employed to analyze the absorber's operational mechanism. Finally, this study also examined the effect of polarization and incidence angle on absorption.

Graphical abstract: Design and theoretical investigation of a switchable and tunable terahertz absorber based on graphene and vanadium dioxide

Article information

Article type
Paper
Submitted
23 Jan 2026
Accepted
22 Apr 2026
First published
06 May 2026

J. Mater. Chem. C, 2026, Advance Article

Design and theoretical investigation of a switchable and tunable terahertz absorber based on graphene and vanadium dioxide

J. Wang, C. Wang, H. Feng, L. Zhang, J. Li, Y. Liu, W. Shi, H. Meng and Y. Gao, J. Mater. Chem. C, 2026, Advance Article , DOI: 10.1039/D6TC00237D

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