Optical simulation of silicon-based complete photonic bandgap modulator

G. Kliros, A. N. Fotiadis, G. P. Tziopis
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Abstract

We report on the design of a silicon-based 2D slab photonic crystal that operates around telecommunication wavelength (1550 nm). The design uses a honeycomb lattice and achieves a complete photonic bandgap (PBG) for transverse-magnetic (TM) polarized light while preserving a connected pattern for efficient electrical injection. The device operation is based on a dynamic shift of the complete photonic band-gap (PBG) due to induced change in the silicon refractive index by free carrier injection. The plane-wave expansion (PWE) method is utilized to design a honeycomb-lattice line defect photonic crystal waveguide with complete TM PBG. The light modulation performance of the device is simulated using the finite-difference time-domain (FDTD) method. With small size, rapid response time and high extinction ratio, the proposed optical modulator can be easily implemented to design ultra-compact all optical integrated circuits.
硅基全光子带隙调制器的光学模拟
我们报道了一种工作在电信波长(1550 nm)附近的硅基二维平板光子晶体的设计。该设计采用蜂窝晶格,实现了横磁偏振光的完整光子带隙(PBG),同时保持了有效电注入的连接模式。该器件的工作原理是基于自由载流子注入引起的硅折射率变化引起的全光子带隙(PBG)的动态位移。利用平面波展开(PWE)方法设计了具有完全TM PBG的蜂窝状晶格线缺陷光子晶体波导。利用时域有限差分(FDTD)方法对器件的光调制性能进行了仿真。该光调制器具有体积小、响应时间快、消光比高等特点,可方便地实现超紧凑全光集成电路的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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