Title :
Phase noise of a high performance OEO and an ultra low noise floor cross-correlation microwave photonic homodyne system
Author :
Eliyahu, Danny ; Seidel, David ; Maleki, Lute
Author_Institution :
OEwaves Inc., Pasadena, CA
Abstract :
This paper describes two recent types of opto-electronic oscillators. The first is a long fiber opto-electronic oscillator, utilizing a high power laser with long delay, and consisting of low noise components. This oscillator generates a stable 10 GHz signal with phase noise of -163 dBc/Hz at 6 kHz offset from the carrier. The second is a low noise 10 GHz compact opto-electronic oscillator. This latter oscillator consists of coupled optical and microwave loops utilizing a short fiber. We also report on an automatic ultra-low noise floor measurement system, designed and built to measure the phase noise of the above (and other) oscillators. This delay line cross-correlation measurement system utilizes microwave-photonic links, eliminating the need for a second oscillator. This system provides quick and reliable measurement of the oscillator under test.
Keywords :
homodyne detection; integrated circuit noise; integrated optoelectronics; microwave oscillators; microwave photonics; optical fibres; phase noise; automatic ultra-low noise floor measurement system; delay line cross-correlation measurement system; frequency 10 GHz; high performance OEO; high power laser; long fiber opto-electronic oscillator; low noise components; microwave loops; microwave photonic homodyne system; microwave-photonic links; opto-electronic oscillators; oscillator under test; phase noise measurement; reliable measurement; ultra low noise floor cross-correlation; ultra-low phase noise microwave oscillator; Delay; Fiber lasers; Laser noise; Masers; Microwave oscillators; Noise measurement; Optical noise; Phase measurement; Phase noise; Power lasers;
Conference_Titel :
Frequency Control Symposium, 2008 IEEE International
Conference_Location :
Honolulu, HI
Print_ISBN :
978-1-4244-1794-0
Electronic_ISBN :
1075-6787
DOI :
10.1109/FREQ.2008.4623111