Dissanayake Chethiya M, Premaratne Malin, Rukhlenko Ivan D, Agrawal Govind P
Advanced Computing and Simulation Laboratory, Department of Electrical and Computer Systems Engineering, Monash University, Clayton, VIC 3800, Australia.
Opt Express. 2010 Sep 27;18(20):21427-48. doi: 10.1364/OE.18.021427.
A deep insight into the inherent anisotropic optical properties of silicon is required to improve the performance of silicon-waveguide-based photonic devices. It may also lead to novel device concepts and substantially extend the capabilities of silicon photonics in the future. In this paper, for the first time to the best of our knowledge, we present a three-dimensional finite-difference time-domain (FDTD) method for modeling optical phenomena in silicon waveguides, which takes into account fully the anisotropy of the third-order electronic and Raman susceptibilities. We show that, under certain realistic conditions that prevent generation of the longitudinal optical field inside the waveguide, this model is considerably simplified and can be represented by a computationally efficient algorithm, suitable for numerical analysis of complex polarization effects. To demonstrate the versatility of our model, we study polarization dependence for several nonlinear effects, including self-phase modulation, cross-phase modulation, and stimulated Raman scattering. Our FDTD model provides a basis for a full-blown numerical simulator that is restricted neither by the single-mode assumption nor by the slowly varying envelope approximation.
为了提高基于硅波导的光子器件的性能,需要深入了解硅固有的各向异性光学特性。这也可能会带来新颖的器件概念,并在未来大幅扩展硅光子学的能力。据我们所知,本文首次提出了一种用于模拟硅波导中光学现象的三维时域有限差分(FDTD)方法,该方法充分考虑了三阶电子和拉曼极化率的各向异性。我们表明,在防止波导内部产生纵向光场的某些实际条件下,该模型可得到相当大的简化,并可用一种计算效率高的算法来表示,适用于对复杂偏振效应的数值分析。为了证明我们模型的通用性,我们研究了几种非线性效应的偏振依赖性,包括自相位调制、交叉相位调制和受激拉曼散射。我们的FDTD模型为一个全面的数值模拟器提供了基础,该模拟器既不受单模假设的限制,也不受缓变包络近似的限制。