DocumentCode
85832
Title
Phase Noise of the Radio Frequency (RF) Beatnote Generated by a Dual-Frequency VECSEL
Author
De, Suvranu ; El Amili, A. ; Fsaifes, Ihsan ; Pillet, Gregoire ; Baili, Ghaya ; Goldfarb, Fabienne ; Alouini, Mohamed-Slim ; Sagnes, I. ; Bretenaker, Fabien
Author_Institution
Lab. Aime Cotton, Univ. Paris Sud 11, Orsay, France
Volume
32
Issue
7
fYear
2014
fDate
1-Apr-14
Firstpage
1307
Lastpage
1316
Abstract
We analyze, both theoretically and experimentally, the phase noise of the radio frequency (RF) beatnote generated by optical mixing of two orthogonally polarized modes in an optically pumped dual-frequency vertical external cavity surface emitting laser (VECSEL). The characteristics of the RF phase noise within the frequency range of 10 kHz-50 MHz are investigated for three different nonlinear coupling strengths between the two lasing modes. In the theoretical model, we consider two different physical mechanisms responsible for the RF phase noise. In the low frequency domain (typically below 500 kHz), the dominant contribution to the RF phase noise is shown to come from the thermal fluctuations of the semiconductor active medium induced by pump intensity fluctuations. However, in the higher frequency domain (typically above 500 kHz), the main source of RF phase noise is shown to be the pump intensity fluctuations which are transferred to the intensity noises of the two lasing modes and then to the phase noise via the large Henry factor of the semiconductor gain medium. For this latter mechanism, the nonlinear coupling strength between the two lasing modes is shown to play an important role in the value of the RF phase noise. All experimental results are shown to be in good agreement with theory.
Keywords
laser cavity resonators; laser modes; laser noise; light polarisation; nonlinear optics; optical pumping; phase noise; quantum well lasers; surface emitting lasers; Henry factor; RF phase noise; dual-frequency VECSEL; frequency 10 kHz to 50 MHz; frequency domain; intensity noise; lasing modes; nonlinear coupling strength; optical mixing; optically pumped dual-frequency vertical external cavity surface emitting lasers; orthogonally polarized modes; pump intensity fluctuations; radiofrequency beatnote generation; semiconductor active medium; theoretical model; thermal fluctuations; Laser modes; Laser noise; Optical pumping; Phase noise; Radio frequency; Dual-frequency laser; phase noise; vertical external cavity surface emitting lasers (VECSELs);
fLanguage
English
Journal_Title
Lightwave Technology, Journal of
Publisher
ieee
ISSN
0733-8724
Type
jour
DOI
10.1109/JLT.2014.2303825
Filename
6730644
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