Title :
Two-Dimensional Antiguided Vertical Cavity Surface Emitting Laser Arrays With Reflecting Boundary
Author :
Napartovich, A.P. ; Elkin, N.N. ; Vysotsky, D.V. ; Shuang Mao ; Kirch, J. ; Xiaodong Wang ; Mawst, L.J.
Author_Institution :
Troitsk Inst. for Innovation & Fusion Res., Moscow, Russia
Abstract :
Strong coupling between elements in 2-D resonant antiguided vertical cavity surface emitting laser (VCSEL) arrays results in a good ability to select the in-phase array mode. This ability can be enhanced by proper tailoring of the gain/loss spatial distributions and elimination of lateral radiation loss. To evaluate quantitatively an impact of these means on single-mode stability, numerical simulations are performed for the resonant antiguided VCSEL arrays. A bidirectional beam propagation method was implemented for solving the wave equation in a 3-D scalar diffraction approximation to describe the VCSEL array with reflecting outer boundaries. This structure is composed of distributed Bragg reflectors, active layer, and a thin absorption spacer separated from the active layer. Openings in the top metal electrode pattern the output facet. The above threshold oscillating wave field distribution was calculated. The transverse gain and index distributions were calculated in each quantum well by the 2-D carrier diffusion equation. Stability of single-mode operation against the lasing onset of higher order modes was studied numerically. A parabolic temperature profile was used to imitate thermal focusing. The maximum output power 90 mW for a 5 × 5 array and up to 350 mW for a 10 × 10 array is predicted in the single-mode regime.
Keywords :
distributed Bragg reflector lasers; laser beams; laser cavity resonators; laser modes; laser stability; light diffraction; numerical analysis; optical focusing; optical losses; quantum well lasers; semiconductor laser arrays; surface emitting lasers; wave equations; 2D carrier diffusion equation; 2D resonant antiguided VCSEL arrays; 3D scalar diffraction approximation; active layer; bidirectional beam propagation method; distributed Bragg reflectors; gain-loss spatial distributions; higher order modes; in-phase array mode; lasing onset; lateral radiation loss; maximum output power; numerical simulations; output facet; parabolic temperature profile; power 350 mW; power 90 mW; quantum well; reflecting outer boundaries; single-mode stability; thermal focusing; thin absorption spacer; threshold oscillating wave field distribution; top metal electrode pattern; transverse gain distribution; transverse index distribution; two-dimensional antiguided vertical cavity surface emitting laser arrays; wave equation; Eigenvalues and eigenfunctions; Equations; Indexes; Mathematical model; Refractive index; Thermal lensing; Vertical cavity surface emitting lasers; Leaky mode; simulation; single-mode operation; vertical cavity surface emitting laser (VCSEL);
Journal_Title :
Selected Topics in Quantum Electronics, IEEE Journal of
DOI :
10.1109/JSTQE.2012.2231057