• DocumentCode
    1758346
  • Title

    Stretchable RFID for Wireless Strain Sensing With Silver Nano Ink

  • Author

    Jiseok Kim ; Zheng Wang ; Woo Soo Kim

  • Author_Institution
    SFU Stretchable Devices Lab., Simon Fraser Univ., Surrey, BC, Canada
  • Volume
    14
  • Issue
    12
  • fYear
    2014
  • fDate
    Dec. 2014
  • Firstpage
    4395
  • Lastpage
    4401
  • Abstract
    Flexible and stretchable inductor-capacitor (LC) resonator-based chipless radio frequency identification (RFID) tags have been fabricated by the direct stamping with silver nano ink. The tags are optimized based on the sympathetic oscillation of LC circuit at specifically designed resonant frequencies ranged from 1.12 to 1.7 GHz by adjusting dimensions of the inductor and capacitor in a tag. Pressure applied to the layer of silver nano ink during the stamping procedure helps densification of silver nanoparticles inside trenches of the stamp before heat-annealing of them. Transfer stamping process is simulated to demonstrate stress distribution across the layer of silver nanoparticles. Compaction of silver nanoparticles, in turn, positively affects mechanical strength of the final silver electrode and enables RFID strain sensors on polydimethylsiloxane to be stretchable up to 7%. By the stretchable RFID strain sensors, wireless strain sensing is demonstrated with a gauge factor of 0.51. Multiple encoded identifications with combination of double tags and stretching behavior of fabricated tags are also demonstrated. This stretchable RFID sensor is promising for biomedical applications such as real-time monitoring of motion detection.
  • Keywords
    LC circuits; annealing; capacitors; inductors; mechanical strength; oscillations; radiofrequency identification; silver; strain gauges; strain sensors; Ag; LC circuit; RFID strain sensors; RFID tags; biomedical applications; capacitor; chipless radio frequency identification; direct stamping; frequency 1.12 GHz to 1.7 GHz; gauge factor; heat-annealing; inductor; mechanical strength; motion detection; multiple encoded identifications; polydimethylsiloxane; resonant frequencies; silver electrode; silver nano ink; silver nanoparticles densification; stamping procedure; stress distribution; stretchable RFID sensor; stretchable inductor-capacitor resonator; sympathetic oscillation; transfer stamping process; wireless strain sensing; Ink; Radiofrequency identification; Resonant frequency; Silver; Strain; Substrates; Direct stamping; RFID; silver nanoparticle; strain sensor; stretchable electronics;
  • fLanguage
    English
  • Journal_Title
    Sensors Journal, IEEE
  • Publisher
    ieee
  • ISSN
    1530-437X
  • Type

    jour

  • DOI
    10.1109/JSEN.2014.2335743
  • Filename
    6855320