Title :
Continuously distributed phase shifts by chirped distributed-feedback gratings for 1.55 μm distributed-feedback lasers
Author :
Hillmer, H. ; Grabmaier, A. ; Burkhard, H.
Author_Institution :
Deutsche Telekom., Darmstadt, Germany
fDate :
8/1/1997 12:00:00 AM
Abstract :
DFB lasers with axially distributed phase shifts implemented by distributed feedback (DFB) gratings with axially varied pitch lengths (chirped DFB gratings) have been investigated. It is shown that distributed phase shifts can be used to counteract spatial hole burning and reduce the inhomogeneity of the axial photon-density distribution. Different total amounts of phase shift and axial extensions of the phase shift section have been compared by appropriate chirping functions, and also to the behaviour of abrupt phase shifts. It is shown that different design goals can be reached such as minimum threshold gain, reduced axial photon field inhomogeneities, specific spectral positions of the oscillating mode or increased gain margin. The results are obtained for two different ways of implementing DFB gratings with axially varied pitch length such as bent waveguides on homogeneous grating fields or fractal gratings. For identical chirping functions, both implementation possibilities show identical device properties if homogeneous coupling is assumed and bending losses remain negligible. Finally, the influence of facet phase statistics on the device yield is studied
Keywords :
bending; chirp modulation; diffraction gratings; distributed feedback lasers; electro-optical modulation; infrared sources; laser transitions; optical losses; optical transmitters; semiconductor lasers; statistical analysis; waveguide lasers; μm distributed-feedback lasers; DFB gratings; DFB lasers; abrupt phase shifts; axial extensions; axial photon-density distribution; axially distributed phase shifts; axially varied pitch length; bent waveguides; chirped distributed-feedback gratings; chirping functions; continuously distributed phase shifts; design goals; distributed phase shifts; homogeneous grating fields; increased gain margin; minimum threshold gain; oscillating mode; phase shift section; reduced axial photon field inhomogeneities; spatial hole burning; specific spectral positions;
Journal_Title :
Optoelectronics, IEE Proceedings -
DOI :
10.1049/ip-opt:19971113