• DocumentCode
    2258508
  • Title

    Efficient 3D high-frequency impedance extraction for general interconnects and inductors above a layered substrate

  • Author

    Srivastava, Navin ; Suaya, Roberto ; Banerjee, Kaustav

  • Author_Institution
    Mentor Graphics, Wilsonville, OR, USA
  • fYear
    2010
  • fDate
    8-12 March 2010
  • Firstpage
    459
  • Lastpage
    464
  • Abstract
    We present an efficient and highly accurate approach to high-frequency impedance extraction for VLSI interconnects and intentional on-chip inductors. The approach is based on a three-dimensional (3D) loop formalism that uses discrete complex images approximations applied to a quasi-magnetostatic treatment of the vector potential, resulting in closed-form expressions for the impedance matrix of current filaments in the presence of a multi-layer substrate. Populating the impedance (Z) matrix for 3D configurations of finite transverse dimensions (including non-Manhattan wires and inductors) is computationally inexpensive, and includes substrate eddy current effects that become quantitatively important in the frequency regime beyond 20 GHz which is imminent at the 45 nm technology node onwards. The accuracy, as exemplified by the magnitude of inductor impedance |Z|, is within 5% of a full-wave electromagnetic field solver for frequencies up to 100 GHz, with an order of magnitude lower computation cost. The proposed method represents a core technology for incorporation into system level extraction of analog systems consisting of multiple inductors and nearby interconnects, for CMOS on-chip circuits in the nanometer era.
  • Keywords
    CMOS integrated circuits; VLSI; electric impedance; field effect MIMIC; inductors; integrated circuit design; integrated circuit interconnections; matrix algebra; multilayers; 3D high frequency impedance extraction; 3D loop formalism; CMOS on chip circuit; VLSI interconnects; analog systems; closed form expressions; current filaments; discrete complex image approximation; finite transverse dimension; general interconnects; impedance matrix; intentional on chip inductor; layered substrate; multilayer substrate; non-Manhattan inductor; non-Manhattan wire; quasimagnetostatic treatment; system level extraction; vector potential; Closed-form solution; Computational efficiency; Eddy currents; Electromagnetic fields; Frequency; Impedance; Inductors; Integrated circuit interconnections; Very large scale integration; Wires;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Design, Automation & Test in Europe Conference & Exhibition (DATE), 2010
  • Conference_Location
    Dresden
  • ISSN
    1530-1591
  • Print_ISBN
    978-1-4244-7054-9
  • Type

    conf

  • DOI
    10.1109/DATE.2010.5457162
  • Filename
    5457162