Terahertz bi-functional polarization converter based on interference mechanism supported by diatomic metasurfaces

IF 2 4区 物理与天体物理 Q3 OPTICS Journal of Optics Pub Date : 2024-02-08 DOI:10.1088/2040-8986/ad247c
Hui Li, Wenhui Xu, Hang Xu, Chunyu Song, Qi Tan, Jianquan Yao
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Abstract

Polarization manipulation based on the Jones matrix facilitates the enhancement of light-matter interactions. Recently, arbitrarily tailorable polarization states generated with the assistance of a diatomic metasurface effectively reduce the complexity of the system. Nevertheless, a single polarization switching behavior hinders the application of meta-platforms in cryptographic imaging. Here, we theoretically propose and design a single-layer diatomic all-dielectric metasurface working in the terahertz band, which can efficiently realize bi-functional polarization switching according to the Jones matrix. Such a meta-platform is assembled from two anisotropic silicon pillars with carefully optimized lateral dimensions and in-plane twist angles. Benefiting from the flexible assembly of half-wave plate and quarter-wave plate, the polarization states generated by the constructed metasurfaces in the transmission mode can be arbitrarily tailored. The feasibility of this diatomic metasurface is further validated by a broadband near-field imaging device, paving the way for broader system applications in cryptographic imaging, data storage, and chiral sensing.
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基于二原子元表面支持的干涉机制的太赫兹双功能偏振转换器
基于琼斯矩阵的偏振操作有助于增强光与物质之间的相互作用。最近,在二原子元表面的帮助下产生的可任意调整的偏振态有效地降低了系统的复杂性。然而,单一的偏振切换行为阻碍了元平台在加密成像中的应用。在这里,我们从理论上提出并设计了一种工作在太赫兹波段的单层硅原子全介电元表面,它可以根据琼斯矩阵有效地实现双功能极化切换。这种元平台由两个各向异性的硅柱组装而成,其横向尺寸和平面扭转角经过精心优化。得益于半波板和四分之一波板的灵活组装,所构建的元表面在传输模式下产生的偏振态可以任意定制。宽带近场成像装置进一步验证了这种二原子元表面的可行性,为加密成像、数据存储和手性传感等更广泛的系统应用铺平了道路。
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来源期刊
CiteScore
4.50
自引率
4.80%
发文量
237
审稿时长
1.9 months
期刊介绍: Journal of Optics publishes new experimental and theoretical research across all areas of pure and applied optics, both modern and classical. Research areas are categorised as: Nanophotonics and plasmonics Metamaterials and structured photonic materials Quantum photonics Biophotonics Light-matter interactions Nonlinear and ultrafast optics Propagation, diffraction and scattering Optical communication Integrated optics Photovoltaics and energy harvesting We discourage incremental advances, purely numerical simulations without any validation, or research without a strong optics advance, e.g. computer algorithms applied to optical and imaging processes, equipment designs or material fabrication.
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