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Ultrafast all-optical OR gate using quantum-dot semiconductor optical amplifier-based Mach-Zehnder interferometer

机译:使用基于量子点半导体光放大器的Mach-Zehnder干涉仪的超快全光或门

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Practical implementation of all-optical signal processing unit requires integrated all-optical devices for ease of manufacturing, installation, and operation. The semiconductor optical amplifier Mach-Zehnder interferometer (SOA-MZI) is an integrated all-optical logic gate which can fulfill these requirements. Conceptually, SOA-MZI-based logic gate operation is straightforward, relying on optically inducing XGM, XPM or other nonlinear phenomena between the SOAs located in each of the two interferometer arms. In this paper, all-optical QD-SOA-based MZI switch is used to design the all-optical OR gate. The QD SOA-MZI operation has been analyzed theoretically by solving the rate equations of the QD-SOA dynamics, optical wave propagation equations in an active medium, and the MZI equations. The impact of the peak data power as well as of the QD-SOAs current density, maximum modal gain, and QD-SOAs length on the AM of the switching outcome are explored and assessed by means of the numerical simulation. The operation of the system is demonstrated with 160 Gbit/s.
机译:全光信号处理单元的实际实现需要集成的全光设备,以简化制造,安装和操作。半导体光放大器马赫曾德尔干涉仪(SOA-MZI)是可以满足这些要求的集成全光逻辑门。从概念上讲,基于SOA-MZI的逻辑门操作是简单明了的,它依赖于光学干涉XGM,XPM或其他位于两个干涉仪臂中的SOA之间的非线性现象。本文采用基于QD-SOA的全光MZI开关设计全光或门。通过求解QD-SOA动力学的速率方程,有源介质中的光波传播方程和MZI方程,从理论上分析了QD SOA-MZI操作。通过数值模拟,探索并评估了峰值数据功率以及QD-SOA电流密度,最大模态增益和QD-SOA长度对开关结果AM的影响。以160 Gbit / s的速度演示了系统的操作。

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