Experimental Synthetic Aperture Radar with Dynamic Metasurfaces
Abstract
We investigate the use of a dynamic metasurface as the transmitting antenna for a synthetic aperture radar (SAR) imaging system. The dynamic metasurface consists of a one-dimensional microstrip waveguide with complementary electric resonator (cELC) elements patterned into the upper conductor. Integrated into each of the cELCs are two diodes that can be used to shift each cELC resonance out of band with an applied voltage. The aperture is designed to operate at K band frequencies (17.5 to 20.3 GHz), with a bandwidth of 2.8 GHz. We experimentally demonstrate imaging with a fabricated metasurface aperture using existing SAR modalities, showing image quality comparable to traditional antennas. The agility of this aperture allows it to operate in spotlight and stripmap SAR modes, as well as in a third modality inspired by computational imaging strategies. We describe its operation in detail, demonstrate high-quality imaging in both 2D and 3D, and examine various trade-offs governing the integration of dynamic metasurfaces in future SAR imaging platforms.
Cite
@article{arxiv.1703.00072,
title = {Experimental Synthetic Aperture Radar with Dynamic Metasurfaces},
author = {Timothy Sleasman and Michael Boyarsky and Laura Pulido-Mancera and Thomas Fromenteze and Mohammadreza F. Imani and Matthew Reynolds and David R. Smith},
journal= {arXiv preprint arXiv:1703.00072},
year = {2018}
}