Polarization Detection of Terahertz Waves using All‐Silicon Metasurfaces with Tightly Focusing Behavior

Author:

Li Hui1ORCID,Zheng Chenglong1,Duan Shouxin2,Li Jie13,Xu Hang1,Li Yifan4,Song Chunyu1,Yang Fan1,Yue Zhen1,Shi Wei1,Zhang Yating1,Shen Yun2,Yao Jianquan1

Affiliation:

1. Key Laboratory of Opto‐Electronics Information Technology (Tianjin University) Ministry of Education, School of Precision Instruments and Opto‐Electronics Engineering, Tianjin University No. 92 WeiJin Road Tianjin 300072 China

2. Department of Physics, School of Physics and Materials Science Nanchang University Nanchang 330031 China

3. Information Materials and Device Applications Key Laboratory of Sichuan Provincial Universities Chengdu University of Information Technology Chengdu 610225 China

4. College of Electronic Information Engineering & Hebei Key Laboratory of Digital Medical Engineering Hebei University Baoding 071000 China

Abstract

AbstractThe manipulation of polarization states is reflected in the tailoring of light–matter interactions and has great applications in fundamental science. Nevertheless, the conventional polarization‐separated detection behavior in the terahertz (THz) band is very challenging when applied to visualize the incident polarization state since its measurement requires sophisticated instrumentation. Here, the feasibility of its reconstruction of the full‐Stokes parameter matrix in the THz band is explored by establishing an all‐silicon decoupled metasurface based on the polarization multiplexing encoding technique. The pixelated focal spots gathered in the target plane allow us to employ more elaborate methods to extract the characteristic parameters of the incident polarization states. The resolvability of the THz polarization detection behavior with a single focal spot is further optimized benefiting from the longitudinal polarization component (Ez) generated by the tightly focused beam in the propagation direction. The capability of the Ez‐component in determining the key parameters that compose the polarization ellipse is evaluated by predefining the random incident polarization on a standard Poincaré sphere. Thus, the proposed scheme offers significant advantages in future THz communications, providing opportunities for ultra‐compact, high‐resolution full‐Stokes polarization imaging and multidimensional information processing.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Publisher

Wiley

Subject

Condensed Matter Physics,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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