Abstract

A low-loss and low-dispersive optical-fiber-like hybrid HE₁₁ mode is developed within a wide band in metallic hollow waveguides if their inner walls are coated with a thin dielectric layer. We investigate terahertz (THz) transmission losses from 0.5 to 5.5 THz and bending losses at 2.85 THz in a polystyrene-lined silver waveguides with core diameters small enough (1 mm) to minimize the number of undesired modes and to make the waveguide flexible, while keeping the transmission loss of the HE₁₁ mode low. The experimentally measured loss is below 10 dB/m for 2 < ν < 2.85 THz (~4-4.5 dB/m at 2.85 THz) and it is estimated to be below 3 dB/m for 3 < ν < 5 THz according to the numerical calculations. At ~1.25 THz, the waveguide shows an absorption peak of ~75 dB/m related to the transition between the TM₁₁-like mode and the HE₁₁ mode. Numerical modeling reproduces the measured absorption spectrum but underestimates the losses at the absorption peak, suggesting imperfections in the waveguide walls and that the losses can be reduced further.

Highlights

  • Transmission of terahertz (THz) waves has been predominantly realized as free-space beams propagating in air to avoid relatively strong absorption in most media in the THz range

  • We demonstrate that the absorption band is caused by the change in the profile of the dominant hybrid mode, which may affect the loss within the transmission band

  • Flexible polystyrene-lined hollow metallic waveguides of bore diameter 1 mm designed for the 2.5-5THz band are analyzed experimentally and numerically

Read more

Summary

Introduction

Transmission of terahertz (THz) waves has been predominantly realized as free-space beams propagating in air to avoid relatively strong absorption in most media in the THz range. A. Harrington, “Reducing transmission losses in hollow THz waveguides,” IEEE Trans. Mitrofanov, “Low-loss modes in hollow metallic terahertz waveguides with dielectric coatings,” Appl.

Results
Conclusion
Full Text
Paper version not known

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call

Disclaimer: All third-party content on this website/platform is and will remain the property of their respective owners and is provided on "as is" basis without any warranties, express or implied. Use of third-party content does not indicate any affiliation, sponsorship with or endorsement by them. Any references to third-party content is to identify the corresponding services and shall be considered fair use under The CopyrightLaw.