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Adaptive Integrated Optical Bragg Grating in Semiconductor Waveguide Suitable for Optical Signal Processing

机译:适用于半导体波导的自适应集成光学布拉格光栅,适用于光学信号处理

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摘要

This article presents a methodology for an integrated Bragg grating using an alloy of GaAs, AlGaAs, and InGaAs with a controllable refractive index to obtain an adaptive Bragg grating suitable for many applications on optical processing and adaptive control systems, such as limitation and filtering. The refractive index of a Bragg grating is controlled by using an external electric field for controlling periodic modulation of the refractive index of the active waveguide region. The designed Bragg grating has refractive indices programmed by using that external electric field. This article presents two approaches for designing the controllable refractive indices active region of a Bragg grating. The first approach is based on the modification of a planar micro-strip structure of the iGaAs traveling wave as the active region, and the second is based on the modification of self-assembled InAs/GaAs quantum dots of an alloy from GaAs and InGaAs with a GaP traveling wave. The overall design and results are discussed through numerical simulation by using the finite-difference time-domain, plane wave expansion, and opto-wave simulationmethods to confirm its operation and feasibility.
机译:本文介绍了使用可控折射率的GaAs,AlgaAs和IngaAs的合金的集成布拉格光栅的方法,以获得适用于许多在光学处理和自适应控制系统上的许多应用的自适应布拉格光栅,例如限制和滤波。通过使用外部电场来控制布拉格光栅的折射率,用于控制有源波导区域的折射率的周期性调制。设计的布拉格光栅通过使用该外部电场编程的折射率。本文呈现了两种用于设计布拉格光栅的可控折射指数的方法。第一方法是基于IGAAS行波的平面微带结构作为活动区域的修改,第二是基于从GaAs和IngaAs的合金的自组装InAs / GaAs量子点的改变间隙行程波。通过使用有限差分时域,平面波膨胀和光波仿真方法来证实其操作和可行性来讨论整体设计和结果。

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