Vanadium dioxide-assisted switchable multifunctional metamaterial structure

Author:

Qiu Yu1,Yan De-Xian12,Feng Qin-Yin1,Li Xiang-Jun1,Zhang Le1ORCID,Qiu Guo-Hua1,Li Ji-Ning3

Affiliation:

1. China Jiliang University

2. Zhejiang University

3. Tianjin University

Abstract

A multifunctional design based on vanadium dioxide (VO2) metamaterial structure is proposed. Broadband absorption, linear-to-linear (LTL) polarization conversion, linear-to-circular (LTC) polarization conversion, and total reflection can be achieved based on the insulator-to-metal transition (IMT) of VO2. When the VO2 is in the metallic state, the multifunctional structure can be used as a broadband absorber. The results show that the absorption rate exceeds 90% in the frequency band of 2.17 - 4.94 THz, and the bandwidth ratio is 77.8%. When VO2 is in the insulator state, for the incident terahertz waves with a polarization angle of 45°, the structure works as a polarization converter. In this case, LTC polarization conversion can be obtained in the frequency band of 0.1 - 3.5 THz, and LTL polarization conversion also can be obtained in the frequency band of 3.5 - 6 THz, especially in the 3.755 - 4.856 THz band that the polarization conversion rate is over 90%. For the incident terahertz waves with a polarization angle of 0°, the metamaterial structure can be used as a total reflector. Additionally, impacts of geometrical parameters, incidence angle and polarization angle on the operating characteristics have also been investigated. The designed switchable multifunctional metasurfaces are promising for a wide range of applications in advanced terahertz research and smart applications.

Funder

Natural Science Foundation of Zhejiang Province

National Natural Science Foundation of China

Fundamental Research Funds for the Provincial Universities of Zhejiang

State's Key Project of Research and Development Plan for National Quality Infrastructure

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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