High-Q microsphere cavity for laser stabilization and optoelectronic microwave oscillator
Author(s) -
Vladimir S. Ilchenko,
X. Steve Yao,
Lute Maleki
Publication year - 1999
Publication title -
proceedings of spie, the international society for optical engineering/proceedings of spie
Language(s) - English
Resource type - Conference proceedings
SCImago Journal Rank - 0.192
H-Index - 176
eISSN - 1996-756X
pISSN - 0277-786X
DOI - 10.1117/12.349244
Subject(s) - materials science , optical fiber , optoelectronics , laser , microwave , optics , phase noise , optical carrier transmission rates , photonics , optical amplifier , fiber laser , physics , radio over fiber , wavelength , quantum mechanics
With submillimeter size and optical Q up to - lo'", microspheres with whispering-gallery (WG) modes are attractive new component for fiber-optics/photonics applications and a potential core in ultra-compact high-spectral-purity optical and microwave oscillators. In addition to earlier demonstrated optical locking of diode laser to WG mode in a microsphere. we report on microsphere application in the microwave optoelectronic oscillator, OEO. In OEO, a steady-state microwave modulation of optical carrier is obtained in a closed loop including electro-optical modulator, fiber-optic delay, detector and microwave amplifier. OEO demonstrates exceptionally low phase noise (-140 dBc/Hz at lOkHz from -1OGHz carrier) with a fiber length -2km. Current technology allows to put all parts of the OEO, except the fiber, on the same chp. Microspheres, with their demonstrated Q equivalent to a kilometer fiber storage, can replace fiber delays in a truly integrated device. We have obtained microwave oscillation in microsphere-based OEO at 5 to 18 GHz, with 1310nm and 1550nm optical carrier, in two configurations: 1)with external DFB pump laser, and 2)with a ring laser including microsphere and a fiber optic amplifier. Also reported is a simple and efficient fiber coupler for microspheres facilitating their integration with existing fiber optics devices.
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