• DocumentCode
    1377270
  • Title

    Superconducting RF Metamaterials Made With Magnetically Active Planar Spirals

  • Author

    Kurter, C. ; Zhuravel, A.P. ; Abrahams, J. ; Bennett, C.L. ; Ustinov, A.V. ; Anlage, Steven M.

  • Author_Institution
    Dept. of Phys., Univ. of Maryland, College Park, MD, USA
  • Volume
    21
  • Issue
    3
  • fYear
    2011
  • fDate
    6/1/2011 12:00:00 AM
  • Firstpage
    709
  • Lastpage
    712
  • Abstract
    Superconducting metamaterials combine the advantages of low-loss, large inductance (with the addition of kinetic inductance), and extreme tunability compared to their normal metal counterparts. Therefore, they allow realization of compact designs operating at low frequencies. We have recently developed radio frequency (RF) metamaterials with a high loaded quality factor and an electrical size as small as ~ λ/658 (λ is the free space wavelength) by using Nb thin films. The RF metamaterial is composed of truly planar spirals patterned with lithographic techniques. Linear transmission characteristics of these metamaterials show robust Lorentzian resonant peaks in the sub-100 MHz frequency range below the Tc of Nb. Though Nb is a non-magnetic material, the circulating currents in the spirals generated by RF signals produce a strong magnetic response, which can be tuned sensitively either by temperature or magnetic field thanks to the superconducting nature of the design. We have also observed strong nonlinearity and meta-stable jumps in the transmission data with increasing RF input power until the Nb is driven into the normal state. We discuss the factors modifying the induced magnetic response from single and 1-D arrays of spirals in the light of numerical simulations.
  • Keywords
    Q-factor; metamaterials; niobium; superconducting materials; superconducting microwave devices; superconducting thin films; Lorentzian resonant peak; RF signal; circulating current; electrical size; frequency 100 MHz; high loaded quality factor; linear transmission; lithographic technique; magnetic response; magnetically active planar spiral; meta-stable jump; nonmagnetic material; radio frequency metamaterial; superconducting RF metamaterial; temperature; thin film; Magnetic materials; Metamaterials; Niobium; Radio frequency; Resonant frequency; Spirals; Superconducting magnets; Artificial magnetic response; RF metamaterials; superconducting devices;
  • fLanguage
    English
  • Journal_Title
    Applied Superconductivity, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1051-8223
  • Type

    jour

  • DOI
    10.1109/TASC.2010.2088093
  • Filename
    5634083