Liquid crystal-based enclosed coplanar waveguide phase shifter for 54–66 GHz applications

Jinfeng Li, Daping Chu*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

66 Citations (Scopus)

Abstract

A 0–10 V bias voltage-driven liquid crystal (LC) based 0–180 continuously variable phase shifter was designed, fabricated, and measured with insertion loss less than −4 dB across the spectrum from 54 GHz to 66 GHz. The phase shifter was structured in an enclosed coplanar waveguide (ECPW) with LC as tunable dielectrics encapsulated by a unified ground plate in the design, which significantly reduced the instability due to floating effects and losses due to stray modes. By competing for spatial volume distribution of the millimeter-wave signal occupying lossy tunable dielectrics versus low-loss but non-tunable dielectrics, the ECPW’s geometry and materials are optimized to minimize the total of dielectric volumetric loss and metallic surface loss for a fixed phase-tuning range. The optimized LC-based ECPW was impedance matched with 1.85 mm connectors by the time domain reflectometry (TDR) method. Device fabrication featured the use of rolled annealed copper foil of lowest surface roughness with nickel-free gold-plating of optimal thickness. Measured from 54 GHz to 66 GHz, the phase shifter prototype presented a tangible improvement in phase shift effectiveness and signal-to-noise ratio, while exhibiting lower insertion and return losses, more ease of control, and high linearity as well as lower-cost fabrication as compared with up-to-date documentations targeting 60 GHz applications.

Original languageEnglish
Article number650
JournalCrystals
Volume9
Issue number12
DOIs
Publication statusPublished - Dec 2019
Externally publishedYes

Keywords

  • 60 GHz
  • Enclosed coplanar waveguide
  • Liquid crystal
  • Millimeter-wave
  • Phase shifter
  • True time delay
  • Tunable circuits and devices

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