Title :
Measurement and modeling of distributed-feedback lasers with spatial hole burning
Author :
Fang, W. ; Hsu, A. ; Chuang, S.L. ; Tanbun-Ek, T. ; Sergent, A.M.
Author_Institution :
Dept. of Electr. & Comput. Eng., Illinois Univ., Urbana, IL, USA
fDate :
4/1/1997 12:00:00 AM
Abstract :
Longitudinal spatial hole burning (SHB) in semiconductor lasers is examined theoretically and experimentally in index-coupled distributed-feedback (DFB) lasers. The amplified spontaneous emission (ASE), or facet light, below threshold is measured and fitted by a theoretical model in order to extract the parameters such as the phases of optical field reflection at the facets. The ASE spectrum above threshold is also measured and compared with theoretical results using the same parameters. The photon density profile of the dominant lasing mode and the carrier density profile at a bias current above threshold are then calculated. The theoretical results are compared to the experimentally measured change in the spontaneous emission (SE) (or carrier density) profile along the laser stripe using an optical fiber setup with careful calibration between the below and above threshold SE longitudinal profiles. By fitting the experimental ASE spectra from the facet both below and above threshold and the SHB profile from the side of the laser as a function of position to our theoretical results, we show that our procedure is a promising and systematic approach for understanding DFB lasers, especially the SHB effects. It is also shown that the facet reflectivities, phases, and the coupling coefficient have a large impact on the SHB of DFB lasers
Keywords :
carrier density; distributed feedback lasers; laser modes; laser theory; light reflection; optical hole burning; semiconductor device models; semiconductor lasers; spontaneous emission; superradiance; ASE; above threshold SE longitudinal profile; amplified spontaneous emission; below threshold SE longitudinal profile; bias current; carrier density; carrier density profile; coupling coefficient; distributed-feedback lasers; dominant lasing mode; facet light; facet reflectivities; index-coupled DFB lasers; laser stripe; longitudinal SHB; optical fiber setup; optical field reflection; phases; photon density profile; semiconductor lasers; spatial hole burning; threshold; Charge carrier density; Density measurement; Fiber lasers; Laser modes; Laser theory; Optical reflection; Phase measurement; Semiconductor lasers; Spontaneous emission; Stimulated emission;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/2944.605706