A Reconfigurable Terahertz Metamaterial Absorber for Gas Sensing Applications

Author:

Shruti 1ORCID,Pahadsingh Sasmita1,Appasani Bhargav1ORCID,Srinivasulu Avireni2ORCID,Bizon Nicu345ORCID,Thounthong Phatiphat67ORCID

Affiliation:

1. School of Electronics Engineering, KIIT University, Bhubaneswar 751024, India

2. School of Engineering and Technology, Mohan Babu University, Tirupati 517102, India

3. Faculty of Electronics, Communication and Computers, University of Pitesti, 110040 Pitesti, Romania

4. ICSI Energy Department, National Research and Development Institute for Cryogenic and Isotopic Technologies, 240050 Ramnicu Valcea, Romania

5. Doctoral School, University Politehnica of Bucharest, Splaiul Independentei Street No. 313, 060042 Bucharest, Romania

6. Renewable Energy Research Centre (RERC), Faculty of Technical Education, King Mongkut’s University of Technology North Bangkok, Bangkok 10800, Thailand

7. Group of Research in Electrical Engineering of Nancy (GREEN), University of Lorraine-GREEN, F-54000 Nancy, France

Abstract

Reconfigurable metamaterials have immense applications in sensing. A refractive index reconfigurable terahertz metamaterial absorber was investigated in this research for gas sensing applications. The absorption spectrum reconfigures with the changes in the surrounding medium’s refractive index. The proposed absorber displays positive permittivity and negative permeability at the resonance frequency of 3.045 THz indicating magnetic resonance. The design consists of concentric U-shaped rings that were optimally designed to perform the parametric analysis using the finite element method (FEM). The absorption bands offered by the structure were found to be insensitive to variation in polarization angles up to 60°. The outcome of this design approach yields a 99.75% absorption rate with a Q-factor of 87. Additionally, the equivalent circuit model of this proposed absorber was analyzed to estimate the resonance frequency, which reveals good agreement with the simulated ones. Moreover, the structure was designed for a refractive index ranging between 1 and 1.03 to detect harmful gases such as methane, chloroform, etc., with a high sensitivity of 3.01 THz/RIU (Refractive Index Unit) and figure of merit (FoM) of 86. This research work is potentially suitable for biological sensing and chemical industry applications.

Funder

Framework Agreement between University of Pitesti (Romania) and King Mongkut’s University of Technology North Bangkok

Publisher

MDPI AG

Subject

Inorganic Chemistry,Condensed Matter Physics,General Materials Science,General Chemical Engineering

Reference40 articles.

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