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A Simple Optoelectronic Oscillator with All-optical Gain Based on the Dual-frequency Integrated Semiconductor Laser

机译:基于双频集成半导体激光器的全光增益具有简单的光电振荡器

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A novel photonic method to generate high-frequency microwave signals based on the all-optical gain OEO is proposed in this paper. The core device is the monolithically integrated mutually injected laser, in which two DFB laser sections are simultaneously fabricated on one chip. By tuning the appropriate control currents, the monolithically integrated mutually injected laser would oscillate on two different optical modes and thus, it can be seen as one natural dual-frequency laser. Attributing to the combined effects of the photon-to-photon resonance (PPR) phenomenon in the dual-mode laser as well as the sideband injection locking amplification (SAIL) influence in the close OEO configuration, the modulation response of the laser module would be correspondingly changed, and in theory, the modulation response peak of the relaxation resonance frequency (RRF) can be increased infinitely due to the infinite frequency interval between the oscillating optical modes, leading to a widely tunable microwave photonic filter (MPF). In addition, the 3-dB bandwidth is also limited, indicating a high Q value. The gain is provided by optical means through one erbium doped optical amplifier (EDFA). On the basis of this principle, the highspeed external electric-optical modulator (EOM), huge-frequency electrical bandpass filters (EBPFs) with narrow 3-dB bandwidth as well as multi-stage electrical amplifiers (EAs) can be eliminated once the OEO loop is closed. In the current proof-of-concept experiment, one microwave signal with the SSB phase noise at -105.38 dBc/Hz @10 kHz from the central carrier of 17.2 GHz is realized, indicating an evident performance optimization. Additionally, by making full use of the Reconstruction Equivalent Chirp (REC) technique, the integrated dual-frequency laser can be fabricated easily similar with conventional fabrication process, leading to this system rather compact and a promising candidate for use in high-frequency microwave signals generation.
机译:本文提出了一种基于全光增益OEO产生高频微波信号的新型光子方法。核心装置是单片集成的相互注入的激光器,其中两个DFB激光部分同时制造在一个芯片上。通过调整适当的控制电流,整体集成的相互注入的激光器会在两种不同的光学模式上振荡,因此可以看作一种自然双频激光器。归因于双模激光器中的光子 - 光子谐振(PPR)现象的组合效果以及在关闭OEO配置中的边带注射锁定放大(帆)影响,激光模块的调制响应将是相应地改变,并且理论上,由于振荡光学模式之间的无限频率间隔,可以无限地增加弛豫共振频率(RRF)的调制响应峰值,导致广泛调谐的微波光子过滤器(MPF)。此外,3-DB带宽也有限,表示高Q值。通过光学装置通过一个掺铒光放大器(EDFA)提供增益。在该原理的基础上,一旦OEO就可以消除高速外电 - 光学调制器(EOM),具有窄3-DB带宽以及多级电放大器(EAS)的巨大电气带通滤波器(EBPF)循环关闭。在目前的概念证明实验中,实现了17.2GHz中央载体的SSB相位噪声的一个微波信号,从17.2GHz的中央载体中实现了明显的性能优化。另外,通过充分利用重建等效啁啾(REC)技术,可以轻松地与传统的制造过程类似地制造集成的双频激光器,导致该系统相当紧凑,并且有希望用于高频微波信号的候选者一代。

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