Title :
Thermal effects in monolithically integrated tunable laser transmitters
Author :
Kozodoy, Peter ; Strand, Tim ; Akulova, Yuliya ; Fish, Greg ; Schow, Clint ; Koh, Ping ; Bian, Zhixi ; Christofferson, James ; Shakouri, Ali
Author_Institution :
Agility Commun. Inc., Santa Barbara, CA, USA
Abstract :
We investigate thermal effects in widely-tunable laser transmitters based on an integrated single chip design. The chip contains a Sampled-Grating Distributed Bragg Reflector (SG-DBR) laser monolithically integrated with a semiconductor optical amplifier (SOA) and an electroabsorption modulator (EAM). The thermal impedance of the ridge structure is evaluated through simulation and experiment, and thermal crosstalk between sections is examined. Heating of the mirrors by neighboring sections is found to result in unintentional offsets in wavelength tuning. Thermal effects in the electroabsorption modulator are examined in depth. A positive feedback mechanism causes local temperature rise at the modulator input, with the potential to trigger catastrophic thermal runaway. A self-consistent finite-element model is developed to simulate the EAM temperature profile and device performance. This model is used to optimize the device, resulting in integrated EAMs that achieve a dissipated power limit in excess of 300 mW.
Keywords :
distributed Bragg reflector lasers; electro-optical modulation; electroabsorption; finite element analysis; integrated optoelectronics; laser feedback; laser mirrors; semiconductor optical amplifiers; thermal management (packaging); Sampled-Grating Distributed Bragg Reflector; catastrophic thermal runaway; electroabsorption modulator; integrated single chip design; local temperature rise; modulator input; monolithically integrated tunable laser transmitters; positive feedback mechanism; ridge structure; self-consistent finite-element model; semiconductor optical amplifier; thermal crosstalk; thermal effects; thermal impedance; Chip scale packaging; Crosstalk; Distributed Bragg reflectors; Impedance; Laser tuning; Optical transmitters; Semiconductor lasers; Semiconductor optical amplifiers; Temperature; Tunable circuits and devices;
Conference_Titel :
Semiconductor Thermal Measurement and Management Symposium, 2004. Twentieth Annual IEEE
Print_ISBN :
0-7803-8363-X
DOI :
10.1109/STHERM.2004.1291321