DocumentCode :
2940791
Title :
Microscopic model of quantum noise in semiconductor lasers
Author :
Travagnin, M. ; Lugiato, L.A.
Author_Institution :
Dipt. di Fisica, Milan Univ., Italy
fYear :
2000
fDate :
10-15 Sept. 2000
Abstract :
Summary form only given. The intensity noise properties of single-mode semiconductor lasers at zero-frequency are studied on the basis of an operator set of equations for the field, the material polarization, the microscopic carrier distribution and the total carrier number in each band. The theory includes the noise effects of (i) Coulomb scattering processes, which tend to drive the carriers into intraband Fermi-Dirac quasi-equilibrium, (ii) spectral hole burning, i.e. the carrier deviation from quasi-equilibrium induced mainly by light-matter interaction, (iii) pump-blocking, which, in conformity with the Pauli exclusion principle, prevents the pumped carriers whose k-state is already occupied from entering the active layer. All these phenomena are not considered in the standard theory, which starts from a macroscopic set of equations for the field and the total carrier population only. Our analysis shows that Coulomb scattering and spectral hole burning have only negligible effects on the noise properties of the laser, while pump-blocking can bring a sizable increase of intensity noise. Under certain parametric conditions this increase can raise the noise level above the shot noise limit, thus destroying any squeezing. We show that the pump-blocking induced additional noise originates from the field and the material polarization. Since the suppression of field and polarization noise is ensured respectively by destructive interference of field fluctuations at the output mirror and by gain saturation, we conclude that pump-blocking hampers both these phenomena.
Keywords :
laser noise; laser theory; optical hole burning; optical pumping; optical saturation; optical squeezing; quantum noise; semiconductor lasers; Coulomb scattering processes; Pauli exclusion principle; carrier deviation from quasi-equilibrium; destructive interference; field fluctuations; gain saturation; intensity noise properties; intraband Fermi-Dirac quasi-equilibrium; material polarization; microscopic carrier distribution; microscopic model; operator set of equations; pump-blocking; quantum noise; semiconductor lasers; shot noise limit; single-mode lasers; spectral hole burning; squeezing hindering effect; total carrier number; Equations; Laser modes; Laser noise; Laser theory; Light scattering; Microscopy; Optical materials; Particle scattering; Semiconductor device noise; Semiconductor lasers;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Quantum Electronics Conference, 2000. Conference Digest. 2000 International
Conference_Location :
Nice, France
Print_ISBN :
0-7803-6318-3
Type :
conf
DOI :
10.1109/IQEC.2000.908092
Filename :
908092
Link To Document :
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