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Accuracy of Waveform Spectrum Analysis for Ultrashort Optical Pulses

机译:超短光脉冲波形频谱分析的准确性

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We investigate the waveform power spectrum (WPS) measurement of ultrashort pulses using the nonlinear Kerr effect in an optical waveguide. Our study focuses on a recent experiment reporting the WPS measurement of 260-fs pulses using a 6-cm-long, highly nonlinear chalcogenide (ChG) planar waveguide. By numerical simulation of the underpinning nonlinear propagation, we show the importance of low chromatic dispersion in the waveguide for avoiding measurement inaccuracy due to bandwidth narrowing and asymmetric distortion of the WPS. We also show the distortion effect of excessive input power on broadening the WPS bandwidth. In comparison to using conventional nonlinear fibers, highly nonlinear ChG waveguides are shown to generally enable a more accurate and broadband measurement of shorter pulses over a multiterahertz frequency range, and for a wider ranging signal wavelength. Furthermore, higher order dispersion effects are also avoided. Experiments with nonlinear fiber show its capability to measure the WPS of high-speed 640-Gb/s data signals, albeit for broader pulses and with less wavelength flexibility. Furthermore, the WPS is used to effectively retrieve the signal autocorrelation waveform. The factors impacting the measurement accuracy is compared to other recent experiments using ChG and silicon waveguides. Analysis shows that extending the technique to pulses shorter than 260 fs requires further optimizing the ChG waveguide dispersion, which would benefit broadband signal processing in general.
机译:我们研究在光波导中使用非线性克尔效应的超短脉冲的波形功率谱(WPS)测量。我们的研究重点是最近的一项实验,该实验报告了使用6厘米长,高度非线性的硫族化物(ChG)平面波导对260 fs脉冲进行WPS测量。通过基础非线性传播的数值模拟,我们表明了波导中低色散对于避免由于带宽变窄和WPS的不对称失真而导致的测量误差的重要性。我们还显示了输入功率过大对扩大WPS带宽造成的失真影响。与使用常规的非线性光纤相比,高度非线性的ChG波导通常可以在更短的脉冲频率和更宽的信号波长范围内,更精确,更宽带地测量较短的脉冲。此外,还避免了更高阶的色散效应。非线性光纤的实验表明,它具有测量高速640 Gb / s数据信号的WPS的能力,尽管它具有更宽的脉冲范围和较小的波长灵活性。此外,WPS用于有效地检索信号自相关波形。将影响测量精度的因素与使用ChG和硅波导的其他最新实验进行了比较。分析表明,将技术扩展到短于260 fs的脉冲需要进一步优化ChG波导色散,这将总体上有利于宽带信号处理。

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