Title :
Cooled, ultrahigh Q, sapphire dielectric resonators for low-noise, microwave signal generation
Author :
Driscoll, Michael M. ; Haynes, James T. ; Jelen, Robert A. ; Weinert, Robert W. ; Gavaler, J.R. ; Talvacchio, John ; Wagner, George R. ; Zaki, Kawthar A. ; Liang, Xiao-Peng
Author_Institution :
Westinghouse Electron. Syst. Group, Baltimore, MD, USA
fDate :
5/1/1992 12:00:00 AM
Abstract :
Ultra-high Q, X-band resonators, used in a frequency discriminator for stabilization of a low-noise signal generator, can provide a means of obtaining significant reduction in phase noise levels. Resonator unloaded Qs on the order of 500 K can be obtained in sapphire dielectric resonator (DR) operating on a low-order (i.e. TE/sub 01/) mode at 77 K and employing high-temperature superconducting (HTS) films installed in the DR enclosure covers. Rigorous analysis for the determination of resonator frequency, modes, and unloaded Q have been carried out using mode matching techniques. Trade-off studies have been performed to select resonator dimensions for the optimum mode yielding highest unloaded Q and widest spurious mode separation. Field distributions within the resonator have been computed to enable practical excitation of the required mode. The results of both analysis and prototype device evaluation experiments are compared for resonators fabricated using enclosures consisting of conventional, metal sidewalls and covers employing HTS films as a function of cover conductivity.<>
Keywords :
cavity resonators; dielectric resonators; microwave generation; microwave oscillators; sapphire; signal generators; 500 K; 77 K; Al/sub 2/O/sub 3/; DR enclosure; HTS films; X-band resonators; YBaCu/sub 3/O/sub 7/-LaAlO/sub 3/; cover conductivity; field distribution; frequency discriminator; high temperature superconducting film; low noise signal generator stabilisation; metal sidewalls; microwave signal generation; mode matching techniques; optimum mode; oscillators; phase noise levels; resonator dimensions; resonator frequency; sapphire dielectric resonator; ultra high Q resonator; Dielectrics; Distributed computing; High temperature superconductors; Phase noise; Prototypes; Resonant frequency; Signal generators; Superconducting device noise; Superconducting films; Tellurium;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on