Title :
Transmission Line and Equivalent Circuit Models for Plasmonic Waveguide Components
Author :
Kocabas, Sukru Ekin ; Veronis, Georgios ; Miller, David A B ; Fan, Shanhui
Author_Institution :
Ginzton Lab., Stanford Univ., Stanford, CA
Abstract :
Modeling of waveguide junctions using transmission lines and lumped circuit elements is common practice in microwave networks. By the help of the scattering matrix formalism, it is possible to describe junction effects in a very concise way. Such a representation is crucial for the design of complex systems containing many interacting parts. Using scattering matrices, we characterize symmetric junctions between 2-D metal--insulator--metal (MIM) waveguides with optical signals at infrared frequencies (1550 nm) propagating in them. We verify our characterization by perfectly matching a wavelength-sized MIM waveguide to a subwavelength-sized one using a Smith chart. We then map the scattering matrix description to an equivalent lumped circuit representation and discuss the physical significance of its elements. We show that the simplified characteristic impedance model is appropriate for the deep subwavelength regime. The scattering matrix model for the MIM junctions leads to simplified analysis that can be integrated into circuit modeling software packages, such as SPICE.
Keywords :
MIM devices; S-matrix theory; equivalent circuits; microwave photonics; optical waveguide components; plasmonics; transmission lines; 2-D metal-insulator-metal waveguide; SPICE; Smith chart; deep subwavelength regime; equivalent lumped circuit representation; lumped circuit elements; microwave networks; optical signals; plasmonic waveguide components; scattering matrix description; scattering matrix formalism; simplified characteristic impedance model; software package modeling; transmission lines; waveguide junction modeling; wavelength 1550 nm; wavelength-sized MIM waveguide; Equivalent circuits; optical waveguides; parallel plate waveguides; plasmons; scattering matrices; waveguide discontinuities; waveguide junctions;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2008.924431