Title :
Efficient electromagnetic analysis of spiral inductor patterned ground shields
Author :
Rautio, James C. ; Merrill, James D. ; Kobasa, Michael J.
Author_Institution :
Sonnet Software, North Syracuse, NY, USA
Abstract :
Patterned ground shields are widely used to increase the Q of spiral inductors on silicon. As RFIC (radio frequency integrated circuit) technology pushes toward deeper submicron nodes, the geometries of ground shields can become exceedingly complicated. This poses a huge challenge for numerical EM (electromagnetic) simulators. This paper explores several ground shield geometries and illustrates a new anisotropic conducting sheet model for efficient EM analysis of even the most complicated ground shield geometries by substitution of a continuous, but anisotropic conducting sheet. The technique is validated by comparison of EM analysis results using this new model to EM analysis results of actual ground shield geometries. We also explore visualization of the current induced in the silicon substrate by the inductor and (if present) the ground shield.
Keywords :
electromagnetic shielding; inductors; radiofrequency integrated circuits; silicon; EM analysis; RFIC technology; anisotropic conducting sheet model; deeper submicron nodes; electromagnetic analysis; electromagnetic simulators; ground shield geometry; numerical EM simulators; radio frequency integrated circuit technology; silicon substrate; spiral inductor patterned ground shields; visualization; Conductivity; Fingers; Inductors; Metals; Silicon; Spirals; Substrates; Anisotropy; CMOS technology; RFIC; moment methods; numerical simulation; patterned ground; radio frequency integrated circuits; spiral inductors;
Conference_Titel :
Microwaves, Communications, Antennas and Electronics Systems (COMCAS), 2013 IEEE International Conference on
Conference_Location :
Tel Aviv
DOI :
10.1109/COMCAS.2013.6685228