Title :
High-performance quantum cascade lasers with electric-field-free undoped superlattice
Author :
Tredicucci, A. ; Capasso, F. ; Gmachl, C. ; Sivco, D.L. ; Hutchinson, A.L. ; Cho, A.Y.
Author_Institution :
Lucent Technol., AT&T Bell Labs., Murray Hill, NJ, USA
fDate :
3/1/2000 12:00:00 AM
Abstract :
An optimized design of quantum cascade lasers with electric field free undoped superlattice active regions is presented. In these structures the superlattice is engineered so that: (1) the first two extended states of the upper miniband are separated by an optical phonon to avoid phonon bottleneck effects and concentrate the injected electron density in the lower state and (2) the oscillator strength of the laser transition is maximized. The injectors´ doping profile is also optimized by concentrating the doping in a single quantum well to reduce the electron density in the active material. These design changes result in major improvements of the pulse/continuous-wave performance such as a weak temperature dependence of threshold (T0=167 K), high peak powers (100-200 mW at 300 K) and higher CW operating temperatures for devices emitting around at /spl lambda//spl sim/8.5 μm.
Keywords :
electron density; laser beams; laser transitions; oscillator strengths; quantum well lasers; semiconductor lasers; semiconductor superlattices; 100 to 200 mW; 167 K; 300 K; 8.5 mum; CW operating temperatures; active material; continuous-wave performance; doping; doping profile; electric field free undoped superlattice active regions; electric-field-free undoped superlattice; electron density; extended states; high peak powers; high-performance quantum cascade lasers; injected electron density; laser transition; lower state; optical phonon; optimized design; oscillator strength; phonon bottleneck effects; pulse performance; quantum cascade lasers; single quantum well; superlattice active regions; temperature dependence; threshold; upper miniband; Design optimization; Doping profiles; Electron optics; Laser transitions; Optical design; Optical superlattices; Oscillators; Phonons; Quantum cascade lasers; Temperature dependence;
Journal_Title :
Photonics Technology Letters, IEEE