Title :
Design and modeling of GaAs/AlGaAs nonlinear waveguides by Hertzian potential formulation
Author :
Massaro, Alessandro ; Tasco, Vittoriana ; Todaro, Maria Teresa ; Cingolani, Roberto ; De Vittorio, Massimo ; Passaseo, Adriana
Author_Institution :
CNR-INFM, Nat. Nanotechnol. Lab., Lecce, Italy
fDate :
Sept. 29 2009-Oct. 1 2009
Abstract :
We present in this work the design of second harmonic generation process in χ(2) nonlinear waveguides by a new time domain simulator. The presented Hertzian potential formulation (HPF) is applied to quasi-phase-matched GaAs/AlGaAs nonlinear waveguide with dielectric discontinuities. With the introduction of the presented rigorous time domain method it is possible to represent the physical phenomena such as light propagation and second harmonic generation (SHG) process inside a nonlinear optical device with a good convergent solution and low computational cost. We first check the convergence of the HPF approach by comparing the numerical results with experimental ones for a GaAs/AlGaAs nonlinear waveguide with a fundamental mode at λFU = 1.955 μm coupled to a coprapagating second-harmonic SH mode (λSH = 9.775 μm) through an appropriate nonlinear susceptibility coefficient. Then we apply the modelling to a GaAs/AlGaAs ridge waveguide with λFU = 1.55 μm and λSH = 0.775 μm by evaluating the second harmonic conversion efficiency versus the waveguide length. The model is generic and can be applied also to periodic microwave waveguides.
Keywords :
III-V semiconductors; aluminium compounds; gallium arsenide; time-domain analysis; waveguides; GaAs-AlGaAs; Hertzian potential formulation; dielectric discontinuities; light propagation; nonlinear optical device; periodic microwave waveguides; quasi-phase-matched GaAs/AlGaAs nonlinear waveguide; rigorous time domain method; second harmonic generation process; time domain simulator; Computational efficiency; Convergence of numerical methods; Couplings; Dielectrics; Gallium arsenide; Nonlinear optical devices; Optical harmonic generation; Optical propagation; Optical waveguides; Waveguide discontinuities;
Conference_Titel :
Microwave Conference, 2009. EuMC 2009. European
Conference_Location :
Rome
Print_ISBN :
978-1-4244-4748-0