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Active Integrated Filters for RF-Photonic Channelizers

机译:有源集成滤波器,用于RF光子信道器

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摘要

A theoretical study of RF-photonic channelizers using four architectures formed by active integrated filters with tunable gains is presented. The integrated filters are enabled by two- and four-port nano-photonic couplers (NPCs). Lossless and three individual manufacturing cases with high transmission, high reflection, and symmetric couplers are assumed in the work. NPCs behavior is dependent upon the phenomenon of frustrated total internal reflection. Experimentally, photonic channelizers are fabricated in one single semiconductor chip on multi-quantum well epitaxial InP wafers using conventional microelectronics processing techniques. A state space modeling approach is used to derive the transfer functions and analyze the stability of these filters. The ability of adapting using the gains is demonstrated. Our simulation results indicate that the characteristic bandpass and notch filter responses of each structure are the basis of channelizer architectures, and optical gain may be used to adjust filter parameters to obtain a desired frequency magnitude response, especially in the range of 1–5 GHz for the chip with a coupler separation of ∼9 mm. Preliminarily, the measurement of spectral response shows enhancement of quality factor by using higher optical gains. The present compact active filters on an InP-based integrated photonic circuit hold the potential for a variety of channelizer applications. Compared to a pure RF channelizer, photonic channelizers may perform both channelization and down-conversion in an optical domain.
机译:提出了使用具有可调增益的有源集成滤波器形成的四种架构对RF光子信道器进行的理论研究。集成滤波器由两端口和四端口纳米光子耦合器(NPC)启用。假设工作中无损,并且具有三个具有高透射率,高反射率和对称耦合器的独立制造案例。 NPC的行为取决于全反射受阻的现象。实验上,使用常规微电子处理技术,在多量子阱外延InP晶片上的单个半导体芯片中制造光子沟道器。状态空间建模方法用于导出传递函数并分析这些滤波器的稳定性。展示了利用增益进行适应的能力。我们的仿真结果表明,每种结构的特征带通和陷波滤波器响应是信道器架构的基础,并且光学增益可用于调整滤波器参数以获得所需的频率幅度响应,尤其是在1–5 GHz范围内芯片的耦合器间距约为9 mm。初步地,光谱响应的测量表明通过使用更高的光学增益可以提高品质因数。基于InP的集成光子电路上的当前紧凑型有源滤波器为各种信道器应用提供了潜力。与纯RF信道器相比,光子信道器可以在光域中执行信道化和下变频。

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