Title :
Guided-wave characteristics of periodic coplanar waveguides with inductive loading - unit-length transmission parameters
Author_Institution :
Sch. of Electr. & Electron. Eng., Nanyang Technol. Univ., Singapore, Singapore
Abstract :
Periodic coplanar waveguides (CPWs) with inductive loading are thoroughly studied by resorting to unit-length transmission parameters, i.e., propagation constant and characteristic impedance, of an equivalent dispersive and/or lossy transmission line. The admittance-type method of moments (MoM) is at first formulated to full-wave modeling of a finite-cell periodic CPW with the two feeding lines and then the short-open-calibration procedure is carried out to deembed the two-port ABCD matrix of the core periodic CPW section. Thus, the above two parameters can be extracted from the MoM simulation to exhibit their guided-wave characteristics, i.e., slow-wave and bandstop behaviors. It is demonstrated for the first time that, within the bandstop or bandgap, the propagation constant must become complex with a nonzero attenuation constant, while the characteristic impedance appears purely imaginary. Three periodic CPW circuits with six finite cells are then characterized on a basis of the transmission-line theorem and the derived S-parameters are validated by Momentum simulation and RF measurement.
Keywords :
S-parameters; coplanar waveguides; matrix algebra; method of moments; periodic structures; waveguide theory; Momentum simulation; RF measurement; S-parameters; admittance-type method of moments; bandstop behavior; characteristic impedance; equivalent dispersive transmission line; finite-cell periodic CPW; full-wave modeling; guided-wave characteristics; inductive loading; lossy transmission line; nonzero attenuation constant; periodic CPW circuits; periodic coplanar waveguides; propagation constant; short-open-calibration procedure; slow-wave behavior; transmission-line theorem; two-port ABCD matrix; unit-length transmission parameters; Circuit simulation; Coplanar transmission lines; Coplanar waveguides; Dispersion; Impedance; Loaded waveguides; Propagation constant; Propagation losses; Transmission line matrix methods; Transmission line theory;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2003.817435