4.6 Article

Thermal tuning of terahertz metamaterial absorber properties based on VO2

Journal

PHYSICAL CHEMISTRY CHEMICAL PHYSICS
Volume 24, Issue 15, Pages 8846-8853

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2cp01070d

Keywords

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Funding

  1. National Natural Science Foundation of China [51606158, 11604311, 61705204, 21506257, 61805278]
  2. State Key Laboratory of Transducer Technology of China [SKT2001]
  3. Scientific Research Fund of Si Chuan Provincial Science and Technology Department [2020YJ0137, 2020YFG0467]
  4. Southwest University of Science and Technology [JZ21-052, JZ21-057]
  5. School of Science of Southwest University of Science and Technology [LX20210067]
  6. Scientific and Technological Innovation Programs of Higher Education Institutions in Shanxi (STIP) [2021L485]

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A novel and structurally simple multifunctional broadband absorber is presented, using the thermogenic phase change properties of vanadium dioxide material to flexibly adjust absorption intensity and achieve near-perfect absorption in an ultra-broadband range.
We present a novel, structurally simple, multifunctional broadband absorber. It consists of a patterned vanadium dioxide film and a metal plate spaced by a dielectric layer. Temperature control allows flexible adjustment of the absorption intensity from 0 to 0.999. The modulation mechanism of the absorber stems from the thermogenic phase change properties of the vanadium dioxide material. The absorber achieves total reflection properties in the terahertz band when the vanadium dioxide is in the insulated state. When the vanadium dioxide is in its metallic state, the absorber achieves near-perfect absorption in the ultra-broadband range of 3.7 THz-9.7 THz. Impedance matching theory and the analysis of electric field are also used to illustrate the mechanism of operation. Compared to previous reports, our structure utilizes just a single cell structure (3 layers only), and it is easy to process and manufacture. The absorption rate and operating bandwidth of the absorber are also optimised. In addition, the absorber is not only insensitive to polarization, but also very tolerant to the angle of incidence. Such a design would have great potential in wide-ranging applications, including photochemical energy harvesting, stealth devices, thermal emitters, etc.

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