Propagation characteristics of optical solitons

Lai Zhongrong, H. Wei, Lu Youqin
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Abstract

When an optical pulse is transmitted in an optical fiber, the pulse will be broadened due to the dispersion effect, while the pulse will be compressed due to the nonlinear effect. When the two effects are balanced with each other, a peculiar phenomenon-optical soliton is produced. Optical soliton is a special wave packet that can be transmitted over long distances without distortion. Its uniqueness makes it have huge potential application value in the field of optical fiber communication, and provides a new solution for the optical communication system of ultra-long distance and ultra-large capacity transmission. At the same time, it is studying the dispersion effect and nonlinear effect in the optical fiber (cross-phase modulation XPM, self-phase modulation SPM, four-wave mixing (FWM), it is found that the dispersion and nonlinear characteristics of the fiber can be used to generate a supercontinuum. The transmission of optical pulses in optical fibers can be described by the general nonlinear Schrödinger equation, and then the split-step Fourier method can be used to simulate the transmission of optical pulses in optical fibers in MATLAB. Through simulation, we can see the stable transmission of the optical soliton, and at the same time changing the parameters according to different actual conditions, we can see the influence of dispersion and different nonlinear effects on the transmission of optical pulses.
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光孤子的传播特性
当光脉冲在光纤中传输时,由于色散效应,脉冲会被展宽,同时由于非线性效应,脉冲会被压缩。当这两种效应相互平衡时,就会产生一种奇特的现象——光孤子。光孤子是一种特殊的波包,可以在不失真的情况下长距离传输。它的独特性使其在光纤通信领域具有巨大的潜在应用价值,为超长距离、超大容量传输的光通信系统提供了新的解决方案。同时,对光纤中的色散效应和非线性效应(交叉相位调制XPM、自相位调制SPM、四波混频(FWM))进行了研究,发现利用光纤的色散和非线性特性可以产生超连续介质。光脉冲在光纤中的传输可以用一般的非线性Schrödinger方程来描述,然后在MATLAB中利用分步傅立叶方法对光脉冲在光纤中的传输进行仿真。通过仿真,我们可以看到光孤子的稳定传输,同时根据不同的实际条件改变参数,我们可以看到色散和光脉冲传输的不同非线性效应的影响。
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