English

Computational Microwave Imaging Using 3D Printed Conductive Polymer Frequency-Diverse Metasurface Antennas

Instrumentation and Detectors 2017-04-10 v1

Abstract

A frequency-diverse computational imaging system synthesized using three-dimensional (3D) printed frequency-diverse metasurface antennas is demonstrated. The 3D fabrication of the antennas is achieved using a combination of PolyLactic Acid (PLA) polymer material and conductive polymer material (Electrifi), circumventing the requirement for expensive and time-consuming conventional fabrication techniques, such as machine milling, photolithography and laser-etching. Using the 3D printed frequency- diverse metasurface antennas, a composite aperture is designed and simulated for imaging in the K-band frequency regime (17.5-26.5 GHz). The frequency-diverse system is capable of imaging by means of a simple frequency-sweep in an-all electronic manner, avoiding mechanical scanning and active circuit components. Using the synthesized system, microwave imaging of objects is achieved at the diffraction limit. It is also demonstrated that the conductivity of the Electrifi polymer material significantly affects the performance of the 3D printed antennas and therefore is a critical factor governing the fidelity of the reconstructed images.

Keywords

Cite

@article{arxiv.1704.02017,
  title  = {Computational Microwave Imaging Using 3D Printed Conductive Polymer Frequency-Diverse Metasurface Antennas},
  author = {Okan Yurduseven and Patrick Flowers and Shengrong Ye and Daniel Marks and Jonah Gollub and Thomas Fromenteze and Benjamin Wiley and David Smith},
  journal= {arXiv preprint arXiv:1704.02017},
  year   = {2017}
}

Comments

Original manuscript as submitted to IET Microwaves, Antennas & Propagation (2017). 17 pages, 8 figures

R2 v1 2026-06-22T19:10:13.164Z