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Generation of multiple mid-infrared wavelengths by soliton fission in a photonic crystal fiber

机译:通过光子晶体光纤中的孤子裂变产生多个中红外波长

摘要

Higher-order solitons are formed by coupling femtosecond pulses into the fundamental mode of a highly nonlinear silica photonic crystal fiber (HNL-SPCF) fabricated in our laboratory. It is experimentally observed that the higher-order solitons break up into a series of stable and broadband discrete fundamental solitons at the mid-infrared wavelength longer than 2000 nm through the process of soliton self-frequency shift due to the perturbations induced by the higher-order dispersive and nonlinear effects. The maximum soliton red-shift and the tunable wavelength range can be up to 1600 nm and over 400 nm, respectively. The nonlinear dynamic processes of femtosecond pulse breakup are consistent with the solution of the generalized nonlinear Schrödinger equation. This multiple stable and broadband mid-infrared wavelengths generated in such an HNL-SPCF can be used as all-fiber multiwavelength ultrashort pulse sources for multiphoton microscopy and ultrafast photonics.
机译:飞秒脉冲通过将飞秒脉冲耦合到我们实验室制造的高度非线性的二氧化硅光子晶体光纤(HNL-SPCF)的基本模式中而形成。实验观察到,高阶孤子通过孤子自频移过程分解成一系列稳定且宽带的离散基本孤子,其中中红外波长长于2000 nm,这是由高阶孤子引起的扰动引起的。阶色散和非线性效应。最大孤子红移和可调波长范围分别可以高达1600 nm和超过400 nm。飞秒脉冲破裂的非线性动力学过程与广义非线性Schrödinger方程的解一致。在这样的HNL-SPCF中产生的多个稳定的宽带中红外波长可用作多光子显微镜和超快光子学的全光纤多波长超短脉冲源。

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