Title :
Frequency and time domain characterization of microstrip-ridge structures
Author :
Engel, Andrew G., Jr. ; Katehi, Linda P B
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
fDate :
8/1/1993 12:00:00 AM
Abstract :
Microstrip-ridge structures, i.e., conducting strips which are mounted on ridges and are in the close proximity of other conductors on other ridges, are found in submillimeter/terahertz monolithic circuits in conjunction with layered, ridged dielectric waveguides; in millimeter-wave monolithic circuits as microslab lines; in microwave monolithic circuits as integrated traveling-wave optical modulators; and in VLSI circuits as interconnects. A hybrid full-wave frequency domain technique which uniquely synthesizes well-known integral equation and mode-matching methods is shown to be applicable to the study of microstrip-ridge structures. Unlike most other integral equation techniques, the integral equation-mode matching (IEMM) technique is capable of characterizing a wide variety of nonplanar structures. Time domain results are obtained by utilizing a Fourier transform and an equivalent circuit model to evaluate the response at each frequency point. To introduce this method, several two-dimensional structures-specifically, coupled microstrips on ridges, coupled microstrip with an etched groove, and an electrooptic modulator-are examined
Keywords :
MMIC; VLSI; equivalent circuits; frequency-domain analysis; integral equations; microstrip lines; time-domain analysis; waveguide theory; Fourier transform; VLSI circuit interconnects; conducting strips; coupled microstrips; electrooptic modulator; equivalent circuit model; etched groove; frequency domain characterization; hybrid full-wave frequency domain technique; integral equation; integrated traveling-wave optical modulators; microslab lines; microstrip-ridge structures; microwave monolithic circuits; millimeter-wave monolithic circuits; mode-matching methods; nonplanar structures; ridged dielectric waveguides; submillimeter/terahertz monolithic circuits; time domain characterization; two-dimensional structures; Conductors; Coupling circuits; Dielectrics; Integral equations; Microstrip; Millimeter wave integrated circuits; Millimeter wave technology; Optical modulation; Optical waveguides; Strips;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on