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片上太赫兹超表面上结构化表面波的自旋解耦激发和波前整形

Spin-decoupled excitation and wavefront shaping of structured surface waves on-chip terahertz metasurfaces.

作者信息

Chong Ming-Zhe, He Yidan, Zhao Jin, Zhang Yue-Yi, Zhang Zong-Kun, Zhang Chong-Qi, Du Chao-Hai, Zang Xiaofei, Liu Pu-Kun

机构信息

State Key Laboratory of Advanced Optical Communication Systems and Networks, School of Electronics, Peking University, Beijing, 100871, China.

Key Laboratory for the Physics and Chemistry of Nanodevices, School of Electronics, Peking University, Beijing, 100871, China.

出版信息

Nanoscale. 2023 Mar 2;15(9):4515-4522. doi: 10.1039/d2nr06983k.

Abstract

Surface waves (SWs) are of great importance in terahertz (THz) photonics applications due to their subwavelength properties. Hence, it is crucial to develop surface wavefront shaping techniques, which is urgent in modern information technologies. In this paper, a new scheme is proposed to realize SW excitation and spin-decoupled wavefront shaping with an ultracompact planar meta-device working in the THz range. The meta-device is composed of two parts: meta-atoms (in the center) and plasmonic metals (on the left and right sides). By carefully setting the geometry size and rotation angle of each meta-atom, the encoded spin-decoupled phase distributions for both left circularly polarized (LCP) and right circularly polarized (RCP) incident THz waves are determined. In this way, circularly polarized (CP) incident THz waves can be converted to SWs propagating along plasmonic metals with unique wavefront profiles, , Bessel and focusing profiles. Full-wave simulations and THz near-field scanning experiments were performed to verify the functionalities of the meta-device, both of which are in great agreement with theoretical predictions. Our findings may provide more solutions to design THz integrated photonic devices and systems.

摘要

表面波(SWs)因其亚波长特性在太赫兹(THz)光子学应用中具有重要意义。因此,开发表面波前整形技术至关重要,这在现代信息技术中十分迫切。本文提出了一种新方案,利用工作在太赫兹频段的超紧凑平面超材料器件实现表面波激发和自旋解耦波前整形。该超材料器件由两部分组成:超原子(位于中心)和等离子体金属(位于左右两侧)。通过精心设置每个超原子的几何尺寸和旋转角度,确定了左旋圆偏振(LCP)和右旋圆偏振(RCP)入射太赫兹波的编码自旋解耦相位分布。通过这种方式,圆偏振(CP)入射太赫兹波可以转换为沿等离子体金属传播的具有独特波前轮廓(如贝塞尔轮廓和聚焦轮廓)的表面波。进行了全波模拟和太赫兹近场扫描实验以验证该超材料器件的功能,二者均与理论预测高度吻合。我们的研究结果可能为设计太赫兹集成光子器件和系统提供更多解决方案。

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