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Humidity-Sensing Chipless RFID Tag with Enhanced Sensitivity Using an Interdigital Capacitor Structure.

Junho Yeo1, Jong-Ig Lee2, Younghwan Kwon3

  • 1School of ICT Convergence, Daegu University, 201 Daegudae-ro, Gyeongsan 38453, Gyeongbuk, Korea.

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|October 13, 2021
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Summary

This study introduces an eight-bit chipless radio frequency identification tag for humidity sensing. The interdigital capacitor (IDC) resonator shows enhanced sensitivity for humidity detection compared to electric-field-coupled inductor capacitor (ELC) resonators.

Keywords:
chipless radio frequency identification (RFID)humidity sensinginterdigital capacitor (IDC) structurepolyvinyl alcohol (PVA)radar cross-section (RCS)

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Area of Science:

  • Electrical Engineering
  • Materials Science
  • Sensor Technology

Background:

  • Chipless radio frequency identification (RFID) tags offer unique identification capabilities without integrated circuits.
  • Humidity sensors are crucial for environmental monitoring and industrial process control.
  • Integrating sensing functionalities into chipless RFID tags enhances their application potential.

Purpose of the Study:

  • To propose and characterize an eight-bit chipless RFID tag with integrated humidity sensing.
  • To investigate the design and performance of an interdigital capacitor (IDC) resonator for humidity detection.
  • To compare the humidity sensing performance of the IDC resonator with electric-field-coupled inductor capacitor (ELC) resonators.

Main Methods:

  • Design of a compact, high-sensitivity IDC resonator for humidity sensing.
  • Integration of seven ELC resonators for identification purposes in a 2x4 array.
  • Coating the IDC resonator with polyvinyl alcohol (PVA) for humidity interaction.
  • Experimental measurement of bistatic radar cross-section (RCS) in a controlled humidity environment (50-80% RH at 25°C).

Main Results:

  • The IDC resonator demonstrated higher sensitivity to relative humidity (RH) changes in both resonant peak frequency and RCS compared to ELC resonators.
  • Variations in RCS magnitude were significantly larger than resonant peak frequency shifts for both IDC and ELC resonators.
  • The PVA-coated IDC resonator's resonant frequency and RCS changed with humidity, while uncoated resonators remained unaffected.

Conclusions:

  • The proposed eight-bit chipless RFID tag effectively integrates humidity sensing using a PVA-coated IDC resonator.
  • The IDC resonator offers superior humidity sensing performance over ELC resonators in terms of sensitivity.
  • The study validates the potential of chipless RFID technology for developing advanced environmental sensing platforms.