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High speed semiconductor optical amplifiers and their performance in pseudo-random bit-stream generation

机译:高速半导体光放大器及其在伪随机比特流生成中的性能

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Semiconductor optical amplifiers are important for wide range of applications including optical networks, optical tomography and optical logic systems. For many of these applications particularly for optical networks and optical logic high speed performance of the SOA is important. The speed of operation of SOA is limited by the gain and phase recovery times in the SOA. We have demonstrated higher speed operation (ⅰ) for SOAs with a carrier reservoir layer, (ⅱ) for SOAs with a multi-quantum well modulation doped active region, and, (ⅲ) for SOAs with a quantum dot (QD) active region. The multi-quantum well SOA has been integrated with InGaAsP/InP based waveguides to build Mach-Zehnder interferometers (MZI). XOR optical logic has been demonstrated at 80 Gb/s using these SOA-MZI structures. XOR operation has been analyzed by solving the rate equation of the SOA, for SOAs with both regular and QD active region. Mach-Zehnder interferometers fabricated using SOA with quantum dot active region (QD-SOA) can be used for XOR operation at 250 Gb/s. Pseudo random bit stream (PRBS) generation using both regular and QD-SOA have been studied and their performance modeled. The model shows QD-SOA based devices can be used to produce PRBS generators that operate near 250 Gb/s.
机译:半导体光放大器对于包括光网络,光层析成像和光逻辑系统在内的广泛应用非常重要。对于许多此类应用程序,特别是对于光学网络和光学逻辑而言,SOA的高速性能非常重要。 SOA的运行速度受到SOA中增益和相位恢复时间的限制。我们已经证明了具有载流子存储层的SOA的较高运行速度(ⅰ),具有多量子阱调制掺杂有源区的SOA的运行速度(ⅱ)和具有量子点(QD)有源区的SOA的运行速度(ⅲ)。多量子阱SOA已与基于InGaAsP / InP的波导集成在一起,以构建Mach-Zehnder干涉仪(MZI)。使用这些SOA-MZI结构已经以80 Gb / s的速度证明了XOR光学逻辑。对于具有规则和QD有源区的SOA,已经通过求解SOA的速率方程来分析XOR运算。使用具有量子点有源区的SOA(QD-SOA)制造的Mach-Zehnder干涉仪可用于250 Gb / s的XOR操作。研究了使用常规和QD-SOA生成伪随机比特流(PRBS)并对其性能进行了建模。该模型显示,基于QD-SOA的设备可用于生产工作在250 Gb / s附近的PRBS发生器。

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