• DocumentCode
    963084
  • Title

    Phase-Noise Reduction of X -Band Push–Push Oscillator With Second-Harmonic Self-Injection Techniques

  • Author

    Wang, To-Po ; Tsai, Zuo-Min ; Sun, Kuo-Jung ; Wang, Huei

  • Author_Institution
    Dept. of Electr. Eng., Nat. Taiwan Univ., Taipei
  • Volume
    55
  • Issue
    1
  • fYear
    2007
  • Firstpage
    66
  • Lastpage
    77
  • Abstract
    A low phase-noise X-band push-push oscillator using proposed feedback topology is presented in this paper. The oscillator core was implemented in a 0.18-mum CMOS process. By using a power splitter and a delay path in the feedback loop connecting the output and current source of the oscillator, a part of the oscillator output power injects to the oscillator itself. With the proper phase delay in the feedback loop and high transconductance of the current source, a low phase-noise oscillator is achieved. The amplitude stability and phase stability are analyzed, the phenomena of the phase-noise reductions are derived, and the device-size selections of the oscillator are investigated. The time-variant function, impulse sensitivity function, is also adopted to analyze the phase-noise reductions of the second-harmonic self-injected push-push oscillator. These theories are verified by the experiments. This self-injected push-push oscillator achieves low phase noise of -120.1 dBc/Hz at 1-MHz offset from the 9.6-GHz carrier. The power consumption is 13.8 mW from a 1.0-V supply voltage. The figure-of-merit of the oscillator is -188.3 dBc/Hz. It is also the first attempt to analyze the second-harmonic self-injected push-push oscillator
  • Keywords
    CMOS integrated circuits; interference suppression; microwave oscillators; phase noise; power consumption; 0.18 micron; 1 MHz; 1 V; 13.8 mW; 9.6 GHz; CMOS process; amplitude stability; delay path; feedback loop; feedback topology; figure-of-merit; high-Q resonator; impulse sensitivity function; low phase-noise X-band push-push oscillator; phase delay; phase stability; phase-noise reductions; power splitter; second-harmonic self-injection techniques; time-variant function; CMOS process; Delay; Feedback loop; Joining processes; Oscillators; Phase noise; Power generation; Stability analysis; Topology; Transconductance; Current source; delay line; figure-of-merit; high- $Q$ resonator; self-injection;
  • fLanguage
    English
  • Journal_Title
    Microwave Theory and Techniques, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9480
  • Type

    jour

  • DOI
    10.1109/TMTT.2006.886912
  • Filename
    4061065