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Comprehensive simulation platform for a metamaterial imaging system.

Publication ,  Journal Article
Lipworth, G; Rose, A; Yurduseven, O; Gowda, VR; Imani, MF; Odabasi, H; Trofatter, P; Gollub, J; Smith, DR
Published in: Applied optics
November 2015

Recently, a frequency-diverse, metamaterial-based aperture has been introduced in the context of microwave and millimeter wave imaging. The generic form of the aperture is that of a parallel plate waveguide, in which complementary metamaterial elements patterned into the upper plate couple energy from the waveguide mode to the scene. To reliably predict the imaging performance of such an aperture prior to fabrication and experiments, it is necessary to have an accurate forward model that predicts radiation from the aperture, a model for scattering from an arbitrary target in the scene, and a set of image reconstruction approaches that allow scene estimation from an arbitrary set of measurements. Here, we introduce a forward model in which the metamaterial elements are approximated as polarizable magnetic dipoles, excited by the fields propagating within the waveguide. The dipoles used in the model can have arbitrarily assigned polarizability characteristics. Alternatively, fields measured from actual metamaterial samples can be decomposed into a set of effective dipole radiators, allowing the performance of actual samples to be quantitatively modeled and compared with simulated apertures. To confirm the validity of our model, we simulate measurements and scene reconstructions with a virtual multiaperture imaging system operating in the K-band spectrum (18-26.5 GHz) and compare its performance with an experimental system.

Duke Scholars

Published In

Applied optics

DOI

EISSN

1539-4522

ISSN

1559-128X

Publication Date

November 2015

Volume

54

Issue

31

Start / End Page

9343 / 9353

Related Subject Headings

  • Optics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics
 

Citation

APA
Chicago
ICMJE
MLA
NLM
Lipworth, G., Rose, A., Yurduseven, O., Gowda, V. R., Imani, M. F., Odabasi, H., … Smith, D. R. (2015). Comprehensive simulation platform for a metamaterial imaging system. Applied Optics, 54(31), 9343–9353. https://doi.org/10.1364/ao.54.009343
Lipworth, Guy, Alec Rose, Okan Yurduseven, Vinay R. Gowda, Mohammadreza F. Imani, Hayrettin Odabasi, Parker Trofatter, Jonah Gollub, and David R. Smith. “Comprehensive simulation platform for a metamaterial imaging system.Applied Optics 54, no. 31 (November 2015): 9343–53. https://doi.org/10.1364/ao.54.009343.
Lipworth G, Rose A, Yurduseven O, Gowda VR, Imani MF, Odabasi H, et al. Comprehensive simulation platform for a metamaterial imaging system. Applied optics. 2015 Nov;54(31):9343–53.
Lipworth, Guy, et al. “Comprehensive simulation platform for a metamaterial imaging system.Applied Optics, vol. 54, no. 31, Nov. 2015, pp. 9343–53. Epmc, doi:10.1364/ao.54.009343.
Lipworth G, Rose A, Yurduseven O, Gowda VR, Imani MF, Odabasi H, Trofatter P, Gollub J, Smith DR. Comprehensive simulation platform for a metamaterial imaging system. Applied optics. 2015 Nov;54(31):9343–9353.

Published In

Applied optics

DOI

EISSN

1539-4522

ISSN

1559-128X

Publication Date

November 2015

Volume

54

Issue

31

Start / End Page

9343 / 9353

Related Subject Headings

  • Optics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics