Title :
FD-TLM electromagnetic field simulation of high-speed Josephson junction digital logic gates
Author :
Sentelle, Christopher G. ; Voelker, Robert H.
Author_Institution :
Offutt AFB, US Air Force, Bellevue, NE, USA
fDate :
7/1/1996 12:00:00 AM
Abstract :
The finite-difference transmission line matrix (FD-TLM) method is extended to modeling low-Tc Josephson junction (JJ) digital logic integrated circuits (IC´s), providing comprehensive simultaneous time-domain, three-dimensional (3-D) full-wave electromagnetic field and JJ device analysis. Techniques for FD-TLM modeling of a Josephson Atto-Webber switch (JAWS), a two-junction superconducting quantum interference device (SQUID), and modified variable threshold logic (MVTL) logic gates are discussed and simulation results are presented. Interconnection lengths are intentionally short so that the full-wave FD-TLM simulation results can be validated with results of conventional quasistatic-based circuit simulations. Good agreement between the simulation techniques validates the FD-TLM JJ logic circuit modeling approach. In the FD-TLM method the electromagnetic behavior of the circuit is modeled from the material properties and dimensions of the circuit, avoiding separate extractions of parasitic capacitance and inductance as needed in conventional circuit simulations
Keywords :
SQUIDs; electromagnetic field theory; finite difference methods; integrated circuit modelling; logic gates; superconducting logic circuits; threshold logic; time-domain analysis; transmission line matrix methods; FD-TLM EM field simulation; Josephson Atto-Webber switch; Josephson junction logic gates; MVTL logic gates; digital logic gates; electromagnetic behavior; finite difference-TLM method; high-speed logic gates; logic integrated circuits; modified variable threshold logic; superconducting quantum interference device; transmission line matrix; two-junction SQUID; Circuit simulation; Digital integrated circuits; Electromagnetic fields; Electromagnetic modeling; Integrated circuit modeling; Josephson junctions; Logic circuits; Logic devices; Superconducting transmission lines; Transmission line matrix methods;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on