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Tunable Terahertz Deep Subwavelength Imaging Based on a Graphene Monolayer

机译:基于石墨烯单层的可调谐太赫兹深度亚波长成像

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The resolution of conventional terahertz (THz) imaging techniques is limited to about half wavelength, which is not fine enough for applications of biomedical sensing and nondestructive testing. To improve the resolution, a new superlens, constructed by a monolayer graphene sheet combining with a grating voltage gate, are proposed in this paper to achieve deep super-resolution imaging in the THz frequency range. The main idea is based on the Fabry-Perot resonance of graphene edge plasmon waves. By shaping the voltage gate into a radial pattern, magnified images of subwavelength targets can be obtained. With this approach, the finest resolution can achieve up to λ/150. Besides, the superlens can be conveniently tuned to work in a large frequency band ranging from 4.3?THz to 9?THz. The proposal could find potential applications in THz near-field imaging systems.
机译:传统的太赫兹(THz)成像技术的分辨率限制为大约半波长,这对于生物医学感测和非破坏性测试的应用是不够的。为了改善分辨率,在本文中提出了一种由与光栅电压栅极组合的单层石墨烯片构成的新超大,以实现THz频率范围内的深层超分辨率成像。主要思想是基于石墨烯边缘等离子体波的法布里 - 珀罗共振。通过将电压栅极成形为径向图案,可以获得亚波长目标的放大图像。通过这种方法,最好的分辨率可以实现高达λ/ 150。此外,可以方便地调整超级版,以在4.3〜9?THz的大频带中工作。该提案可以在THz近场成像系统中找到潜在的应用。

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