Title :
Phase noise in self-injection-locked oscillators - theory and experiment
Author :
Chang, Heng-Chia
Author_Institution :
Blue 7 Commun. Inc., Fremont, CA, USA
Abstract :
Phase-noise analysis of the self-injection-locked oscillator is presented in this paper. The analysis is developed for different oscillator models and arbitrary self-injection feedback loops. The results are illustrated with specific cases of simple time-delay cable and a high-Q factor resonator. It is shown that the behavior of the phase noise is similar to an oscillator locked to an external low phase-noise source. The output phase noise can be reduced at the noise offset frequency near the carrier frequency, and returning to the free-running oscillator noise far from the carrier frequency for certain stable feedback delay ranges. The phase-noise reduction is affected by the self-injection signal strength and feedback transfer function for different oscillator equivalent-circuit models. The theory is verified by using a self-injection-locked GaAs MESFET oscillator operating at the X-band with delay cable loops. The self-injection-locked technique may be used to improve the phase noise of the existing oscillators.
Keywords :
MESFET integrated circuits; MMIC oscillators; Q-factor; circuit stability; equivalent circuits; feedback oscillators; injection locked oscillators; phase noise; GaAs; MESFET oscillator; X-band; arbitrary self-injection feedback loops; equivalent-circuit models; feedback delay ranges; feedback transfer function; high-Q factor resonator; noise offset frequency; oscillator models; phase-noise analysis; self-injection-locked oscillators; time-delay cable; Delay; Feedback loop; Frequency; Gallium arsenide; MESFETs; Noise reduction; Oscillators; Output feedback; Phase noise; Transfer functions;
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
DOI :
10.1109/TMTT.2003.815872