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首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Characterization and optimization of photonic crystal fibers for enhanced soliton self-frequency shift
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Characterization and optimization of photonic crystal fibers for enhanced soliton self-frequency shift

机译:增强孤子自频移的光子晶体光纤的表征和优化

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摘要

Modeling of the soliton self-frequency shift (SSFS) using the generalized nonlinear Schr?dinger equation (GNLSE) is computationally intensive and becomes time consuming, particularly when comparing the selffrequency shift of several fibers. We present a simple theory that combines fission of a higher-order soliton with the Gordon equation for the evolution of a fundamental soliton. The theory allows the computation of the final soliton wavelength using a simple integration that is far less time consuming than solving the full GNLSE. In the simplest version of the theory no integration is even required. This approach was applied to compare the SSFS in photonic crystal fibers with different dispersion and nonlinear parameters, and the fiber that exhibited the maximum SSFS was selected. Findings of the theory were confirmed with full-scale simulations of the modified GNLSE and with experiments showing that the theoretically predicted fiber optimizes the selffrequency shift.
机译:使用广义非线性薛定er方程(GNLSE)对孤立子自频移(SSFS)进行建模需要大量计算,并且非常耗时,特别是在比较多根光纤的自频移时。我们提出了一个简单的理论,该理论将高阶孤子的裂变与Gordon方程相结合,用于基本孤子的演化。该理论允许使用简单的积分来计算最终孤子波长,这比解决完整的GNLSE所花费的时间要少得多。在该理论的最简单版本中,甚至不需要集成。该方法用于比较具有不同色散和非线性参数的光子晶体光纤中的SSFS,并选择表现出最大SSFS的光纤。对该理论的发现已通过对改进的GNLSE进行全面模拟并通过实验证明了理论上预测的光纤可以优化自频移。

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