Ultra low microwave additive phase noise for an optical RF link based on a Class-A semiconductor laser
Ghaya Baili, Mehdi Alouini, Thierry Malherbe, D. Dolfi, Jean‐Pierre Huignard, Fabien Bretanaker, I. Sagnes, Thomas Merlet, Jean Chazelas
Abstract
Ghaya Baili, Mehdi Alouini, Thierry Malherbe, D. Dolfi, Jean‐Pierre Huignard, Fabien Bretanaker, I. Sagnes, Thomas Merlet, Jean Chazelas
Abstract
The additive RF phase noise of a microwave photonics link is measured using, as the optical source, a semiconductor laser operating in the Class-A regime. The relative intensity noise of this laser being below the shot noise relative level, the phase noise floor of the link is shown to be shot noise limited, -152 dBc/Hz in our experimental conditions. As a result, the phase noise floor evolves as the inverse of the detected photocurrent, pushing the limits of performance to the availability of high power photo-detectors. Below 6 kHz from the carrier frequency at 3 GHz, some noise, in excess with respect to the shot noise limit, is observed but remains lower than -110 dBc/Hz at 100 Hz offset frequency. This residual noise originates mainly from technical noise and can be reduced by isolating the laser from acoustic/electromagnetic perturbations.
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The additive RF phase noise of a microwave photonics link is measured using, as the optical source, a semiconductor laser operating in the Class-A regime. The relative intensity noise of this laser being below the shot noise relative level, the phase noise floor of the link is shown to be shot noise limited, -152 dBc/Hz in our experimental conditions. As a result, the phase noise floor evolves as the inverse of the detected photocurrent, pushing the limits of performance to the availability of high power photo-detectors. Below 6 kHz from the carrier frequency at 3 GHz, some noise, in excess with respect to the shot noise limit, is observed but remains lower than -110 dBc/Hz at 100 Hz offset frequency. This residual noise originates mainly from technical noise and can be reduced by isolating the laser from acoustic/electromagnetic perturbations.
Key concepts: Relative intensity noise, Noise floor, Phase noise, Noise generator, dBc, Shot noise, Flicker noise, Noise (video)