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Ultrafast All-Optical Half Adder Using Quantum-Dot Semiconductor Optical Amplifier-Based Mach-Zehnder Interferometer

机译:基于量子点半导体光放大器的马赫曾德尔干涉仪的超快全光半加法器

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摘要

Interferometric devices have drawn a great interest in all-optical signal processing for their high-speed photonic activity. Quantum-dot semiconductor optical amplifier (QD-SOA)-based gate has added a new momentum in this field to perform all-optical logic and algebraic operations. In this paper, a new and alternative scheme for all-optical half adder using two QD-SOA-based Mach–Zehnder interferometers is theoretically investigated and demonstrated. The proposed scheme is driven by the pair of input data streams for one switch between which the Boolean xor function is to be executed to produce sum-bit. Then the output of the first switch and one of the input data are utilized to drive the second switch to produce carry-bit. The impact of the peak data power as well as of the QD-SOAs current density, small signal gain, and QD-SOAs length on the ER and Q-factor of the switching outcome are explored and assessed by means of numerical simulation. The operation of the system is demonstrated with 160 Gbit/s.
机译:干涉仪设备因其高速光子活动而对全光信号处理引起了极大的兴趣。基于量子点半导体光放大器(QD-SOA)的门在这一领域增加了新的动力,可以执行全光逻辑和代数运算。在本文中,理论上研究和演示了使用两个基于QD-SOA的Mach-Zehnder干涉仪的全光半加法器的新的替代方案。所提出的方案由一对开关的输入数据流对驱动,在它们之间将执行布尔异或函数以产生和位。然后,利用第一开关的输出和输入数据之一来驱动第二开关以产生进位。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,小信号增益和QD-SOA长度对开关结果的ER和Q因子的影响。以160 Gbit / s的速度演示了系统的操作。

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