Title :
Metallo-dielectric electromagnetic bandgap structures for suppression and isolation of the parallel-plate noise in high-speed circuits
Author :
Abhari, Ramesh ; Eleftheriades, George V.
Author_Institution :
Edward S. Rogers Sr. Dept. of Electr. & Comput. Eng., Univ. of Toronto, Ont., Canada
fDate :
6/1/2003 12:00:00 AM
Abstract :
A novel approach for the suppression of the parallel-plate waveguide (PPW) noise in high-speed printed circuit boards is presented. In this approach, one of the two conductors forming the PPW is replaced by an electromagnetic bandgap (EBG) surface. The main advantage of the proposed approach over the commonly practiced methods is the omnidirectional noise suppression it provides. For this purpose, two EBG structures are initially designed by utilizing an approximate circuit model. Subsequently, the corresponding band structures are characterized by analytical solutions using the transverse resonance method, as well as full-wave finite-element simulations. The designed EBG surfaces were fabricated and employed in a number of PPW test boards. The corresponding frequency-domain measurements exhibited bandgaps of approximately 2.21 and 3.35 GHz in the frequency range below 6 GHz. More importantly, suppression of the PPW noise by 53% was achieved based on time-domain reflectometry experiments, while maintaining the signal transmission quality within the required specifications for common signaling standards.
Keywords :
S-parameters; UHF circuits; circuit noise; finite element analysis; interference suppression; microwave circuits; parallel plate waveguides; periodic structures; printed circuits; time-domain reflectometry; 2.21 GHz; 3.35 GHz; FEM; approximate circuit model; electromagnetic bandgap surface; full-wave finite-element simulations; ground/power noise; high-speed PCBs; high-speed printed circuit boards; metallo-dielectric EBG structures; noise suppression; omnidirectional noise; parallel-plate noise; parallel-plate waveguide; periodic structures; signal transmission quality; signaling standards; switching noise; time-domain reflectometry experiments; transverse resonance method; Analytical models; Circuit noise; Conductors; Electromagnetic interference; Electromagnetic waveguides; Finite element methods; Metamaterials; Periodic structures; Printed circuits; Resonance;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2003.812555