Gj. Cokkinides et B. Becker, Modeling the effects of nonlinear materials in ceramic chip capacitors foruse in digital and analog applications, IEEE T AD P, 23(3), 2000, pp. 368-374
This paper describes a physics-based numerical approach to building circuit
models for electronic components that are made of nonlinear dielectrics. T
he resulting models are intended for use in time-domain circuit simulators
to assess the effects of material nonlinearity on the electrical performanc
e of such components as discrete de-coupling and filter capacitors that are
used in digital and analog circuits. A 3-D electrostatic field solver is m
odified to take into account the nonlinear field dependence of the dielectr
ic material and is employed to calculate the Q-V curve for any capacitive s
tructure. Subsequently, a time integration method (similar to that used in
SPICE) is utilized to devise an appropriate time-stepping algorithm for the
current-charge relationship of a nonlinear capacitor that can be used to s
imulate its time-domain electrical characteristics. Sample results are prov
ided to illustrate the methodology and the effects of the material nonlinea
rity on the performance of the capacitor.