Title :
Integrated passive wavelength athermalisation for vertical-cavity semiconductor laser diodes
Author :
Phillips, A.E.W. ; Penty, R.V. ; White, I.H.
Author_Institution :
Dept. of Eng., Univ. of Cambridge, UK
fDate :
6/3/2005 12:00:00 AM
Abstract :
The ITU G.694.2 CWDM wavelength grid spacing is largely determined by an allowance for source wavelength drift. A method of reducing this is introduced by stabilising the optical length of a short semiconductor laser cavity, using the phase contribution of DBR reflectors to compensate the increase in its optical length with temperature. It is shown that it is necessary to adopt a VCSEL design incorporating optical polymers in air-gap DBRs. Giving consideration to the technical problems of such an approach, a design procedure is developed based on a TMM survey of the available DBR design space. An example design for a 1λ InP cavity is shown to reduce temperature drift of the design wavelength of 1320 nm to -4.3 pm/ °C over the range 0-80°C.
Keywords :
distributed Bragg reflector lasers; laser cavity resonators; semiconductor device models; semiconductor lasers; surface emitting lasers; thermo-optical effects; DBR design space; DBR reflectors; ITU G.694.2 CWDM wavelength grid spacing; InP cavity; air-gap DBRs; design procedure; design wavelength; integrated passive wavelength athermalisation; optical length; optical polymers; phase contribution; short semiconductor laser cavity; source wavelength drift; temperature drift; vertical-cavity semiconductor laser diodes;
Journal_Title :
Optoelectronics, IEE Proceedings -
DOI :
10.1049/ip-opt:20045048