COOLED, ULTRAHIGH-Q, SAPPHIRE DIELECTRIC RESONATORS FOR LOW-NOISE, MICROWAVE SIGNAL GENERATION

被引:12
|
作者
DRISCOLL, MM
HAYNES, JT
JELEN, RA
WEINERT, RW
GAVALER, JR
TALVACCHIO, J
WAGNER, GR
ZAKI, KA
LIANG, XP
机构
[1] UNIV MARYLAND,DEPT ELECT ENGN,COLLEGE PK,MD 20742
[2] WESTINGHOUSE ELECT CORP,CTR SCI & TECHNOL,DEPT MICROWAVE ACOUST & MAGNET,PITTSBURGH,PA
关键词
D O I
10.1109/58.143174
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Ultrahigh 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 a sapphire dielectric resonator (DR) operating on a low-order (i.e., TE01) 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 high-temperature superconducting films as a function of cover (i.e., HTS film) conductivity.
引用
收藏
页码:405 / 411
页数:7
相关论文
共 50 条
  • [1] ULTRA-HIGH-Q RESONATORS FOR LOW-NOISE, MICROWAVE SIGNAL GENERATION USING SAPPHIRE BUFFER LAYERS AND SUPERCONDUCTING THIN-FILMS
    ABBAS, F
    DAVIS, LE
    GALLOP, JC
    SUPERCONDUCTOR SCIENCE & TECHNOLOGY, 1994, 7 (07): : 495 - 501
  • [2] HIGH-Q THERMOELECTRIC-STABILIZED SAPPHIRE MICROWAVE RESONATORS FOR LOW-NOISE APPLICATIONS
    TOBAR, ME
    GILES, AJ
    EDWARDS, S
    SEARLS, JH
    IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1994, 41 (03) : 391 - 396
  • [3] A low-noise microwave signal source
    V. M. Vladimirov
    I. A. Zapryagaev
    V. G. Konnov
    G. Ya. Kurkin
    V. V. Tarnetskii
    K. N. Chernov
    Instruments and Experimental Techniques, 2010, 53 : 708 - 709
  • [4] A low-noise microwave signal source
    Vladimirov, V. M.
    Zapryagaev, I. A.
    Konnov, V. G.
    Kurkin, G. Ya.
    Tarnetskii, V. V.
    Chernov, K. N.
    INSTRUMENTS AND EXPERIMENTAL TECHNIQUES, 2010, 53 (05) : 708 - 709
  • [5] LOW-NOISE MICROWAVE SIGNAL GENERATION USING BULK-ACOUSTIC-WAVE AND SURFACE-ACOUSTIC-WAVE RESONATORS
    DRISCOLL, MM
    IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 1988, 35 (03) : 426 - 434
  • [6] Generation of coherent low-noise microwave oscillations
    Son R.B.
    Radioelectronics and Communications Systems, 2008, 51 (12) : 669 - 674
  • [7] Low-Noise Microwave Generation with Optical Microresonators
    Lucas, Erwan
    Jost, John D.
    Beha, Katja
    Lezius, Matthias
    Holzwarth, Ronald
    Kippenberg, Tobias J.
    2017 CONFERENCE ON LASERS AND ELECTRO-OPTICS EUROPE & EUROPEAN QUANTUM ELECTRONICS CONFERENCE (CLEO/EUROPE-EQEC), 2017,
  • [8] Compact Low-Noise Photonic Microwave Generation From Commercial Low-Noise Lasers
    Bouchand, Romain
    Xie, Xiaopeng
    Giunta, Michele
    Haensel, Wolfgang
    Lezius, Matthias
    Holzwarth, Ronald
    Alexandre, Christophe
    Tremblin, Pierre-Alain
    Santarelli, Giorgio
    Le Coq, Yann
    IEEE PHOTONICS TECHNOLOGY LETTERS, 2017, 29 (16) : 1403 - 1406
  • [9] LOW-NOISE COOLED MICROWAVE-AMPLIFIERS - SIMULATION AND DESIGN
    ANGELOV, IM
    STOEV, IK
    IVANOV, ZG
    TODOROV, BN
    SPASOV, AY
    KOLLBERG, EL
    LINDSTROM, CO
    WENDEMO, BL
    IEEE TRANSACTIONS ON MICROWAVE THEORY AND TECHNIQUES, 1992, 40 (02) : 389 - 398
  • [10] Low-noise oscillator improves microwave signal stability
    不详
    PHOTONICS SPECTRA, 2011, 45 (09) : 19 - 19