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All-Optical Signal Processing Based on Self-Induced Polarization Control in Optical Fibers

机译:基于自激偏振控制的光纤全光信号处理

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In this contribution, we review our recent progress on the all-optical control of the state-of-polarization of light in optical fibers upon propagation in a system called Omnipolarizer. More precisely, in this device we exploit the unexpected capability of light to self-organize its own state-of-polarization, upon propagation in optical fibers, into universal and environmentally robust states. The underlying physical mechanism consists in a nonlinear cross-polarization feedback interaction between an arbitrary polarized incident signal and its own counter-propagating replica generated at the fiber end by means of a reflective element. Depending on the power ratio between the two waves, e.g., the reflective coefficient, this nonlinear self-repolarization phenomenon offers a rich variety of dynamics for which we have highlighted three main working regimes identified by first a bistable operating regime, a polarization alignment process as well as a genuine chaotic behavior. We have fully characterized these three operating regimes with an excellent agreement between numerical and experimental results. Moreover, beyond the fundamental aspect of these first studies, we have then exploited this self-induced repolarization phenomenon in order to implement several proof-of-principles for all-optical signal processing. In particular, we have successfully demonstrated the spontaneous repolarization of a 10-Gb/s return-to-zero optical signal without noticeable impairments. The bistability and associated hysteresis properties of the Omnipolarizer have been also exploited to implement an optical flip-flop memory as well as a 10-Gb/s polarization-based data packet router. Finally, we have taken advantage of the chaotic dynamics of our device to demonstrate an all-optical scrambler enabling truly chaotic polarization diversity for 10-Gb/s on/off keying wavelength division multiplexing applications.
机译:在这项贡献中,我们回顾了在全光控制光纤在全向偏振器系统中传播时的偏振状态的最新进展。更准确地说,在这种设备中,我们利用光的意外能力,在光纤中传播时会自组织其自身的偏振状态,从而达到普遍且对环境稳定的状态。潜在的物理机制在于任意偏振入射信号与其自身在光纤端通过反射元件产生的反向传播复制品之间的非线性交叉偏振反馈相互作用。根据两个波之间的功率比,例如反射系数,这种非线性的自复极化现象提供了丰富的动力学,为此,我们重点介绍了三个主要的工作机制,首先确定了双稳态工作机制,即偏振对准过程,以及真正的混乱行为。我们已经在数值和实验结果之间取得了很好的一致性,从而充分表征了这三种运行方式。此外,除了这些最初研究的基本方面之外,我们还利用了这种自感应的重新极化现象,以便为全光信号处理实现几个原理证明。特别是,我们已经成功地证明了10 Gb / s归零光信号的自发极化,并且没有明显的损伤。还利用了Omnipolarizer的双稳态和相关的滞后特性来实现光学触发器存储器以及基于偏振的10 Gb / s数据包路由器。最后,我们利用了设备的混沌动力学特性,演示了一种全光学扰码器,可为10 Gb / s开/关键控波分复用应用提供真正的混沌偏振分集。

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