Highly Efficient Terahertz Waveguide Using Two-Dimensional Tellurium Photonic Crystals with Complete Photonic Bandgaps

Author:

Wang Yong1ORCID,Feng Luyao2,Huang Hongwei1,Zeng Zhifeng1,Liu Yuhan1,Liu Xiaotong1,Li Xingquan1,Yang Kaiming1,Zheng Zhijian1,Xu Biaogang3ORCID,He Wenlong4ORCID,Zhan Shaobin2,Wang Wenli15

Affiliation:

1. College of Microelectronics, Shenzhen Institute of Information Technology, Shenzhen 518100, China

2. College of Innovation and Entrepreneurship, Shenzhen Institute of Information Technology, Shenzhen 518100, China

3. School of Mechanical and Electrical Engineering, Shenzhen Polytechnic University, Shenzhen 518000, China

4. College of Electronics and Information Technology, Shenzhen University, Shenzhen 518060, China

5. Shenzhen Research Institute, Xidian University, Shenzhen 518000, China

Abstract

A novel, highly efficient terahertz fully polarized transmission line is designed by two-dimensional tellurium photonic crystals consisting of square lattice rod arrays with a complete photonic bandgap. The TE and TM photonic bandgaps of the tellurium photonic crystals, which are computed by plane wave expansion, happen to coincide, and the complete photonic bandgap covers from 2.894 to 3.025 THz. The function of the designed waveguide is simulated by the finite element method, and the transmission characteristics are optimized by accurately adjusting its structural parameters. The transmission efficiency of the waveguide for TE mode achieves a peak value of −0.34 dB at a central frequency of 2.950 THz and keeps above −3 dB from 2.82 THz to 3.02 THz, obtaining a broad relative bandwidth of about 6.84 percent. The operating bandwidth of the tellurium photonic crystals’ waveguide for TM mode is narrower than that of TE mode, whose relative bandwidth is about 4.39 percent or around 2.936 THz above −5 dB. The designed terahertz photonic crystals’ waveguide can transmit both TE and TM waves, and not only can it be used as a high-efficiency transmission line, but it also provides a promising approach for implementing fully polarized THz devices for future 6G communication systems.

Funder

Foundation of the Shenzhen Institute of Information Technology

National Natural Science Foundation of China

Publisher

MDPI AG

Reference35 articles.

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