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Numerical simulation and experimental studies on soliton self-frequency shift in single-mode optical fiber

机译:单模光纤中孤子自频变换的数值模拟与实验研究

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Soliton self-frequency shift (SSFS) is a phenomenon that Raman self-pumping continuously transfers energy from higher frequency components of optical pulse to its lower frequency components. It has been explored over the last decades, because it has many potential applications in the fields of all-optical wavelength conversion, ultra-fast all-optical switch, all-optical de-multiplexing and so on. In this paper, Firstly, using split-step Fourier method for numerical simulation, it has been found that the soliton self-frequency shift increases with the increase of soliton peak power and nonlinear coefficient of the transmission fiber, and decreases with the increase of soliton width and group velocity dispersion. At the same time, third order dispersion is taken into account, which has a significant inhibitory effect on soliton self-frequency shift. Secondly, according to the existing conditions in the laboratory, self-frequency shift in a 2-km-long single-mode fiber has been experimentally studied, especially the influences of soliton peak power and optical fiber dispersion. A continuously tunable self-frequency shift with central wavelength from 4.29 nm to 43.25 nm has been achieved by adjusting the peak power of the soliton. It has been shown that the soliton self-frequency shift can be effectively tuned by flexibly adjusting the related parameters, which provides guidance for many practical applications of soliton self-frequency shift.
机译:孤子自频移(SSFS)是拉曼自泵送从光学脉冲的较高频率分量转移到其较低频率分量的现象。它已在过去几十年中探讨,因为它在全光波长转换,超快速全光开关,全光解复用等领域具有许多潜在应用。在本文中,首先,使用分流步傅立叶方法进行数值模拟,已经发现孤子自频偏移随着透射光纤的非线性系数的增加而增加,并随着孤子的增加而降低宽度和群体速度分散。同时,考虑到第三阶分散,对孤子自频移位具有显着的抑制作用。其次,根据实验室的现有条件,在实验研究了2公里长的单模光纤中的自频移,尤其是孤子峰值功率和光纤分散的影响。通过调整孤子的峰值,已经实现了具有4.29nm至43.25nm的中央波长的连续可调谐的自变频。已经表明,通过灵活地调整相关参数,可以有效地调整孤子自频移位,这为Soliton自频偏移的许多实际应用提供了指导。

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