PlumX Metrics
Embed PlumX Metrics

Conductive electrifi and nonconductive ninjaflex filaments based flexible microstrip antenna for changing conformal surface applications

Electronics (Switzerland), ISSN: 2079-9292, Vol: 10, Issue: 7
2021
  • 21
    Citations
  • 0
    Usage
  • 25
    Captures
  • 1
    Mentions
  • 21
    Social Media
Metric Options:   Counts1 Year3 Year

Metrics Details

  • Citations
    21
    • Citation Indexes
      21
  • Captures
    25
  • Mentions
    1
    • Blog Mentions
      1
      • Blog
        1
  • Social Media
    21
    • Shares, Likes & Comments
      21
      • Facebook
        21

Most Recent Blog

Electronics, Vol. 10, Pages 821: Conductive Electrifi and Nonconductive NinjaFlex Filaments based Flexible Microstrip Antenna for Changing Conformal Surface Applications

Electronics, Vol. 10, Pages 821: Conductive Electrifi and Nonconductive NinjaFlex Filaments based Flexible Microstrip Antenna for Changing Conformal Surface Applications Electronics doi: 10.3390/electronics10070821 Authors: Dipankar

Article Description

As the usage of wireless technology grows, it demands more complex architectures and conformal geometries, making the manufacturing of radio frequency (RF) systems challenging and expensive. The incorporation of emerging alternative manufacturing technologies, like additive manufacturing (AM), could consequently be a unique and cost-effective solution for flexible RF and microwave circuits and devices. This work presents manufacturing methodologies of 3D-printed conformal microstrip antennas made of a commercially available conductive filament, Electrifi, as the conductive trace on a commercially available nonconductive filament, NinjaFlex, as the substrate using the fused filament fabrication (FFF) method of AM technology. Additionally, a complete high frequency characterization of the prototyped antenna was studied and presented here through a comparative analysis between full-wave simulation and measurements in a fully calibrated ane-choic chamber. The prototyped antenna measures 65.55 × 55.55 × 1.2 mm in size and the measured results show that the 3D-printed Electrifi based patch antenna achieved very good impedance matching at a resonant frequency of 2.4 GHz and a maximum antenna gain of −2.78 dBi. Finally, conformality performances of the developed antenna were demonstrated by placing the antenna prototype on five different cylindrical curved surfaces for possible implementation in flexible elec-tronics, smart communications, and radar applications.

Bibliographic Details

Dipankar Mitra; Ryan Striker; Henry Wolf; Benjamin D. Braaten; Sayan Roy; Ellie Burczek; Ahsan Aqueeb; Kazi Sadman Kabir; Shengrong Ye

MDPI AG

Engineering; Computer Science

Provide Feedback

Have ideas for a new metric? Would you like to see something else here?Let us know