研究目的
To design a temperature tunable narrow-band metasurface absorber (MSA) based on InSb micro-cylinder arrays for enhanced sensing application in the terahertz (THz) region.
研究成果
The proposed narrow-band MSA based on InSb micro-cylinder arrays demonstrates high absorbance and Q-factor, making it suitable for temperature and refractive index sensing in the THz region. Its performance is attributed to the excitation of SPP resonance modes and the dielectric loss feature of InSb. The MSA shows potential for applications in chemical, biological, and optoelectronic fields due to its high sensitivity and tunability.
研究不足
The study is based on numerical simulations, and practical fabrication and experimental validation of the proposed MSA are not addressed. The sensitivity and performance in real-world sensing applications may vary due to fabrication imperfections and environmental factors.
1:Experimental Design and Method Selection:
The study employs numerical simulations to investigate the proposed MSA's performance, focusing on its absorption properties and sensitivity to temperature and refractive index changes. The design is based on a sub-wavelength periodic micro-cylinder array of InSb material and a gold ground-plane on a glass substrate.
2:Sample Selection and Data Sources:
The semiconductor material InSb is selected for its temperature-sensitive permittivity. The study uses calculated permittivity values under different temperatures for simulations.
3:List of Experimental Equipment and Materials:
The MSA consists of InSb micro-cylinder arrays and a gold ground-plane. Simulations are performed using CST Microwave Studio.
4:Experimental Procedures and Operational Workflow:
The study involves simulating the MSA's response to THz waves under varying temperatures and refractive indices of surrounding mediums. The absorbance is calculated based on reflection coefficients.
5:Data Analysis Methods:
The study analyzes the MSA's absorption spectra, Q-factor, and sensitivity to temperature and refractive index changes. Field distributions and power loss densities are examined to understand the absorption mechanisms.
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