Title :
Optically pumped membrane BH-DFB lasers for low-threshold and single-mode operation
Author :
Okamoto, Takeshi ; Nunoya, Nobuhiro ; Onodera, Yuichi ; Yamazaki, Tatsuya ; Tamura, Shigeo ; Arai, Shigehisa
Author_Institution :
Res. Center for Quantum Effect Electron., Tokyo Inst. of Technol., Japan
Abstract :
High optical confinement and high index coupling in 1.55 μm-wavelength GaInAsP-InP membrane buried heterostructure distributed feedback (BH-DFB) lasers consisting of deeply etched single-quantum-well wire-like active regions were demonstrated under room-temperature (RT) continuous-wave (CW) optical pumping. A threshold pump power of 1.5 mW and a submode suppression ratio (SMSR) of 42 dB were obtained for a 142-nm-thick membrane with a cavity length of 120 μm and a stripe width of 2 μm. We have also realized membrane BH-DFB laser arrays by arranging the laser cavities (10 μm spaced 15 elements with five different grating periods). A total wavelength span of 72 nm was achieved with a small lasing wavelength fluctuation up to 1.2 nm at RT-CW condition under optical pumping. From this value, membrane thickness fluctuation was estimated to be 0.4 nm. Threshold pump power of 3.4 mW and SMSR of 45 dB were achieved in a typical device.
Keywords :
arsenic compounds; distributed feedback lasers; electron beam lithography; gallium compounds; indium compounds; laser cavity resonators; laser modes; optical fabrication; optical pumping; quantum well lasers; sputter etching; vapour phase epitaxial growth; 1.5 mW; 1.55 mum; 120 mum; 142 nm; 2 mum; 3.4 mW; BH-DFB Lasers; GaInAsP-InP; GaInAsP-InP membrane; RT-CW condition; buried heterostructure distributed feedback; deep etching; laser cavities; lasing wavelength fluctuation; membrane thickness fluctuation; optical pumping; room-temperature continuous-wave condition; single-mode operation; single-quantum-well wire-like active regions; submode suppression ratio; wavelength span; Biomembranes; Distributed feedback devices; Etching; Fluctuations; Laser excitation; Laser feedback; Optical coupling; Optical feedback; Optical pumping; Pump lasers;
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2003.819495