Bound states in the continuum for encoded imaging
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Affiliation:

1.Department of Physics, School of Physics and Materials Science, Nanchang University, Nanchang 330031, China;2.Institute of Space Science and Technology, Nanchang University, Nanchang 330031, China

Clc Number:

O439

Fund Project:

Project supported by the National Natural Science Foundation of China (61927813, 61865009 ,12104203), and Jiangxi Provincial Natural Science Foundation (20212ACB201007)

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    Abstract:

    Metasurfaces are artificial structures that can finely control the characteristics of electromagnetic waves at subwavelength scales, and they are widely used to manipulate the propagation, phase, amplitude, and polarization of light. In this work, a bound state in the continuum (BIC) structure based on a metallic metasurface is proposed. By adjusting the metallic structure using CST and COMSOL software, a significant quasi-BIC peak can be achieved at a frequency of 0.8217 terahertz (THz). Through multi-level expansion analysis, it is found that the electric dipole (ED) is the main factor contributing to the resonant characteristics of the structure. By leveraging the characteristics of BIC, an imaging system was created and operated. According to the simulation results, the imaging system demonstrated excellent sensitivity and resolution, revealing the great potential of terahertz imaging. This research not only provides new ideas for the creation of BIC structures but also offers an effective reference for the development of high-performance terahertz imaging technology.

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HOU Shuai-Xing, YANG Si-Jia, SHEN Yun, DENG Xiao-Hua. Bound states in the continuum for encoded imaging[J]. Journal of Infrared and Millimeter Waves,2026,45(1):90~96

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History
  • Received:December 20,2024
  • Revised:December 17,2025
  • Adopted:March 07,2025
  • Online: December 17,2025
  • Published:
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