• DocumentCode
    1213943
  • Title

    On the design of RF spiral inductors on silicon

  • Author

    Burghartz, Joachim N. ; Rejaei, Behzad

  • Author_Institution
    Delft Inst. for Microelectron. & Submicrontechnology, Delft Univ. of Technol., Netherlands
  • Volume
    50
  • Issue
    3
  • fYear
    2003
  • fDate
    3/1/2003 12:00:00 AM
  • Firstpage
    718
  • Lastpage
    729
  • Abstract
    This review of design principles for implementation of a spiral inductor in a silicon integrated circuit fabrication process summarizes prior art in this field. In addition, a fast and physics-based inductor model is exploited to put the results contributed by many different groups in various technologies and achieved over the past eight years into perspective. Inductors are compared not only by their maximum quality factors (Qmax), but also by taking the frequency at Qmax, the inductance value (L), the self-resonance frequency (fSR), and the coil area into account. It is further explained that the spiral coil structure on a lossy silicon substrate can operate in three different modes, depending at first order on the silicon doping concentration. Ranging from high to low substrate resistivity, inductor-mode, resonator-mode, and eddy-current regimes are defined by characteristic changes of Qmax, L, and fSR. The advantages and disadvantages of patterned or blanket resistive ground shields between the inductor coil and substrate and the effect of a substrate contact on the inductor are also addressed in this paper. Exploring optimum inductor designs under various constraints leverages the speed of the model. Finally, in view of the continuously increasing operating frequencies in advancing to new generations of RF systems, the range of feasible inductance values for given quality factors are predicted on the basis of optimum technological features.
  • Keywords
    Q-factor; eddy currents; electromagnetic shielding; integrated circuit design; integrated circuit modelling; losses; magnetic microwave devices; radiofrequency integrated circuits; silicon; thin film inductors; RF spiral inductor design; Si; Si IC fabrication process; Si doping concentration; blanket resistive ground shields; coil area; eddy-current regimes; inductance value; inductor-mode; integrated circuit fabrication process; losses; lossy Si substrate; magnetic microwave devices; maximum quality factors; optimum inductor designs; patterned resistive ground shields; physics-based inductor model; resonator-mode; self-resonance frequency; spiral coil structure; substrate contact; substrate resistivity; thin film inductors; Art; Coils; Fabrication; Inductance; Inductors; Q factor; Radio frequency; Silicon; Spirals; Strontium;
  • fLanguage
    English
  • Journal_Title
    Electron Devices, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9383
  • Type

    jour

  • DOI
    10.1109/TED.2003.810474
  • Filename
    1202600