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First order optical differentiator based on an FBG in transmission

机译:传输中基于FBG的一阶光微分器

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摘要

Optical differentiators constitute a basic device for analog all-optical signal processing [1]. Fiber grating approaches, both fiber Bragg grating (FBG) and long period grating (LPG), constitute an attractive solution because of their low cost, low insertion losses, and full compatibility with fiber optic systems. A first order differentiator LPG approach was proposed and demonstrated in [2], but FBGs may be preferred in applications with a bandwidth up to few nm because of the extreme sensitivity of LPGs to environmental fluctuations [3]. Several FBG approaches have been proposed in [3-6], requiring one or more additional optical elements to create a first-order differentiator. A very simple, single optical element FBG approach was proposed in [7] for first order differentiation, applying the well-known logarithmic Hilbert transform relation of the amplitude and phase of an FBG in transmission [8]. Using this relationship in the design process, it was theoretically and numerically demonstrated that a single FBG in transmission can be designed to simultaneously approach the amplitude and phase of a first-order differentiator spectral response, without need of any additional elements.
机译:光微分器构成了模拟全光信号处理的基本设备[1]。光纤光栅方法(包括光纤布拉格光栅(FBG)和长周期光栅(LPG))构成了一种有吸引力的解决方案,因为它们的成本低,插入损耗低并且与光纤系统完全兼容。提出了一阶微分LPG方法并在[2]中进行了演示,但由于LPG对环境波动具有极高的敏感性,FBG在带宽高达几nm的应用中可能是首选。在[3-6]中已经提出了几种FBG方法,它们需要一个或多个附加的光学元件来产生一阶微分器。在文献[7]中提出了一种非常简单的单光学元件FBG方法,用于一阶微分,它应用了FBG在传输中的振幅和相位的对数希尔伯特变换关系[8]。在设计过程中利用这种关系,从理论和数值上证明了,可以设计传输中的单个FBG来同时接近一阶微分器频谱响应的幅度和相位,而无需任何其他元素。

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