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An analysis of beamed wireless power transfer in the Fresnel zone using a dynamic, metasurface aperture

Publication ,  Journal Article
Smith, DR; Gowda, VR; Yurduseven, O; Larouche, S; Lipworth, G; Urzhumov, Y; Reynolds, MS
Published in: Journal of Applied Physics
January 7, 2017

Wireless power transfer (WPT) has been an active topic of research, with a number of WPT schemes implemented in the near-field (coupling) and far-field (radiation) regimes. Here, we consider a beamed WPT scheme based on a dynamically reconfigurable source aperture transferring power to receiving devices within the Fresnel region. In this context, the dynamic aperture resembles a reconfigurable lens capable of focusing power to a well-defined spot, whose dimension can be related to a point spread function. The necessary amplitude and phase distribution of the field imposed over the aperture can be determined in a holographic sense, by interfering a hypothetical point source located at the receiver location with a plane wave at the aperture location. While conventional technologies, such as phased arrays, can achieve the required control over phase and amplitude, they typically do so at a high cost; alternatively, metasurface apertures can achieve dynamic focusing with potentially lower cost. We present an initial tradeoff analysis of the Fresnel region WPT concept assuming a metasurface aperture, relating the key parameters such as spot size, aperture size, wavelength, and focal distance, as well as reviewing system considerations such as the availability of sources and power transfer efficiency. We find that approximate design formulas derived from the Gaussian optics approximation provide useful estimates of system performance, including transfer efficiency and coverage volume. The accuracy of these formulas is confirmed through numerical studies.

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Published In

Journal of Applied Physics

DOI

EISSN

1089-7550

ISSN

0021-8979

Publication Date

January 7, 2017

Volume

121

Issue

1

Related Subject Headings

  • Applied Physics
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 02 Physical Sciences
  • 01 Mathematical Sciences
 

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Smith, D. R., Gowda, V. R., Yurduseven, O., Larouche, S., Lipworth, G., Urzhumov, Y., & Reynolds, M. S. (2017). An analysis of beamed wireless power transfer in the Fresnel zone using a dynamic, metasurface aperture. Journal of Applied Physics, 121(1). https://doi.org/10.1063/1.4973345
Smith, D. R., V. R. Gowda, O. Yurduseven, S. Larouche, G. Lipworth, Y. Urzhumov, and M. S. Reynolds. “An analysis of beamed wireless power transfer in the Fresnel zone using a dynamic, metasurface aperture.” Journal of Applied Physics 121, no. 1 (January 7, 2017). https://doi.org/10.1063/1.4973345.
Smith DR, Gowda VR, Yurduseven O, Larouche S, Lipworth G, Urzhumov Y, et al. An analysis of beamed wireless power transfer in the Fresnel zone using a dynamic, metasurface aperture. Journal of Applied Physics. 2017 Jan 7;121(1).
Smith, D. R., et al. “An analysis of beamed wireless power transfer in the Fresnel zone using a dynamic, metasurface aperture.” Journal of Applied Physics, vol. 121, no. 1, Jan. 2017. Scopus, doi:10.1063/1.4973345.
Smith DR, Gowda VR, Yurduseven O, Larouche S, Lipworth G, Urzhumov Y, Reynolds MS. An analysis of beamed wireless power transfer in the Fresnel zone using a dynamic, metasurface aperture. Journal of Applied Physics. 2017 Jan 7;121(1).

Published In

Journal of Applied Physics

DOI

EISSN

1089-7550

ISSN

0021-8979

Publication Date

January 7, 2017

Volume

121

Issue

1

Related Subject Headings

  • Applied Physics
  • 51 Physical sciences
  • 49 Mathematical sciences
  • 40 Engineering
  • 09 Engineering
  • 02 Physical Sciences
  • 01 Mathematical Sciences