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Transformation and control of ultra-short pulses in dispersion-engineered photonic crystal fibres

机译:色散工程光子晶体光纤中超短脉冲的转换和控制

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Photonic crystal fibres (PCFs) offer greatly enhanced design freedom compared to standard optical fibres. For example, they allow precise control of the chromatic dispersion (CD) profile―the frequency dependence of propagation speed―over a broad wavelength range. This permits studies of nonlinear pulse propagation in previously inaccessible parameter regimes. Here we report on spectral broadening of 100-fs pulses in PCFs with anomalously flat CD profiles. Maps of the spectral and spatio-temporal behaviour as a function of power show that dramatic conversion (to both longer and shorter wavelengths) can occur in remarkably short lengths of fibre, depending on the magnitude and shape of the CD profile. Because the PCFs used are single-mode at all wavelengths, the light always emerges in a fundamental guided mode. Excellent agreement is obtained between the experimental results and numerical solutions of the nonlinear wave equation, indicating that the underlying processes can be reliably modelled. These results show how, through appropriate choice of CD, nonlinearities can be efficiently harnessed to generate laser light at new wavelengths.
机译:与标准光纤相比,光子晶体光纤(PCF)提供了更大的设计自由度。例如,它们允许在很宽的波长范围内精确控制色散(CD)曲线-传播速度的频率依赖性。这允许在以前无法访问的参数范围内研究非线性脉冲传播。在这里,我们报告了具有异常平坦的CD轮廓的PCF中100 fs脉冲的频谱展宽。频谱和时空行为随功率变化的图谱表明,取决于CD分布图的大小和形状,在非常短的光纤长度中会发生戏剧性的转换(到更长和更短的波长)。因为所使用的PCF在所有波长下都是单模的,所以光总是以基本的引导模式出射。实验结果与非线性波动方程的数值解之间取得了极好的一致性,表明可以可靠地对基础过程进行建模。这些结果表明,如何通过适当选择CD来有效利用非线性来生成新波长的激光。

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