Title :
General Method for Calculating the Response and Noise Spectra of Active Fabry–Perot Semiconductor Waveguides With External Optical Injection
Author :
Blaaberg, Søren ; Mørk, Jesper
Author_Institution :
Dept. of Photonics Eng., Tech. Univ. of Denmark, Lyngby, Denmark
Abstract :
We present a theoretical method for calculating small-signal modulation responses and noise spectra of active Fabry-Perot semiconductor waveguides with external light injection. Small-signal responses due to either a modulation of the pump current or due to an optical amplitude or phase modulation of the input field can be calculated. Both responses and noise spectra are given through semianalytical expressions taking into account the longitudinal extent and finite end-facet reflectivities of the active device. Different examples of responses and spectra are presented for semiconductor optical amplifiers and an injection-locked laser. We also demonstrate the applicability of the method to analyze slow and fast light effects in semiconductor waveguides. Finite reflectivities of the facets are found to influence the phase changes of the injected microwave-modulated light.
Keywords :
amplitude modulation; electro-optical modulation; laser noise; microwave photonics; optical pumping; optical waveguides; pulse modulation; reflectivity; semiconductor optical amplifiers; slow light; active Fabry-Perot semiconductor waveguide; external optical injection; fast light effect; finite end-facet reflectivity; injection-locked laser; microwave-modulated light; noise spectra; optical amplitude modulation; optical pulse modulation; pump current modulation; semiconductor optical amplifier; slow light effect; small-signal modulation response; Active noise reduction; Optical modulation; Optical noise; Optical pumping; Optical waveguide theory; Optical waveguides; Phase modulation; Reflectivity; Semiconductor device noise; Semiconductor waveguides; Fast light; Green function; injection locking; semiconductor lasers; semiconductor optical amplifiers (SOAs); slow light;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2009.2014690