Title :
Traveling Wave Analysis for a High-Order Grating, Partially Slotted Laser
Author :
Bello, Frank ; Abdullaev, Azat ; Wallace, Michael ; Nawrocka, Marta ; Qiaoyin Lu ; Weihua Guo ; Donegan, John F.
Author_Institution :
Sch. of Phys., Trinity Coll. Dublin, Dublin, Ireland
Abstract :
We analyze the spectral and spatial characteristics of a partially slotted, ridge-waveguide semiconductor laser utilized for single mode operation and suitable for integration with additional optical devices. In particular, we extract the photon distribution and linewidth behavior of a high-order (37th) grating via the finite-difference time-domain method and show good agreement with the experimental data. The reflection and transmission coefficients are initially calculated via the scattering matrix method and implemented within the traveling wave equations for a current-injected quantum well laser. In particular, the radiative loss of photons and coupling factor is estimated using the reflection coefficient with results demonstrating the state-of-the-art capabilities for this laser to meet industrial requirements for linewidths under 500 kHz and a side-mode suppression ratio over 45 dB.
Keywords :
finite difference time-domain analysis; laser modes; quantum well lasers; waveguide lasers; coupling factor; current-injected quantum well laser; finite-difference time-domain method; high-order grating; linewidth behavior; partially slotted laser; photon distribution; radiative loss; reflection coefficient; ridge-waveguide semiconductor laser; scattering matrix method; side-mode suppression ratio; single mode operation; transmission coefficient; traveling wave analysis; traveling wave equations; Cavity resonators; Finite difference methods; Gratings; Photonics; Reflection; Reflectivity; Scattering; Side-mode suppression ratio (SMSR); single-mode laser; surface grating;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2015.2485219