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Hybrid Optical Integrator Based on Silicon-on-Insulator Platform

机译:基于绝缘体上硅平台的混合光学积分器

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A hybrid optical integrator is a recirculating loop that performs oversampling typically for an analog input using the cross-gain modulation (XGM) in a semiconductor optical amplifier (SOA). The modulated input signal changes the gain of the loop through XGM and thus modifies the loop accumulation. This paper presents hybrid optical integrator for an all-optical analog-to-digital converter based on silicon photonics platform. The device consists of silicon waveguides of dimension 220 × 500 nm (thick × width) and approximately 2,800 μm total loop length, input and output grating couplers for 1550 nm signal, directional couplers, and external components (SOA, optical isolator and band-pass filter). All devices are designed for fabrication on the SOI wafer using E-Beam lithography. A theoretical model for the system is developed and simulated with Lumerical software and Matlab that accounts for critical design parameters such as the loop length, coupling coefficient, and gain in the SOA. The 3-dB couplers were designed and loop length was minimized to reduce the propagation loss through the silicon waveguide and increase the sampling frequency. From the simulation, total loss of silicon photonics device at one round trip is approximately 27 dB. The system is characterized for square waves at Giga-Hertz input frequencies. Simulation results show excellent agreement with the theoretical model of leaky integrator. The operation frequency of the integrator can be increased from MHz up to GHz by replacing fiber cable to silicon waveguide, leading to a free-spectral range of approximately 4.17 GHz.
机译:混合光学积分器是一个循环环路,通常使用半导体光放大器(SOA)中的交叉增益调制(XGM)对模拟输入执行过采样。调制后的输入信号通过XGM改变了环路的增益,从而改变了环路累加。本文提出了一种基于硅光子学平台的全光模数转换器混合光学积分器。该器件由尺寸为220×500 nm(厚×宽)和约2800μm总环路长度的硅波导,用于1550 nm信号的输入和输出光栅耦合器,定向耦合器以及外部组件(SOA,光学隔离器和带通)组成筛选)。所有器件均设计为使用电子束光刻技术在SOI晶圆上制造。使用Lumerical软件和Matlab开发并仿真了该系统的理论模型,该模型考虑了关键设计参数,例如环路长度,耦合系数和SOA中的增益。设计了3 dB耦合器,并最大程度地减小了环路长度,以减少通过硅波导的传播损耗并提高采样频率。通过仿真,硅光子器件在一次往返中的总损耗约为27 dB。该系统具有千兆赫输入频率下的方波特性。仿真结果表明与泄漏积分器的理论模型具有很好的一致性。通过将光缆替换为硅波导,可以将积分器的工作频率从MHz提高到GHz,从而产生约4.17 GHz的自由光谱范围。

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