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Characterization and shaping of the time-frequency Schmidt mode spectrum of bright twin beams generated in gas-filled hollow-core photonic crystal fibers

机译:气体填充空心芯光子晶体纤维中亮双梁时频施密特模式谱的表征与成形

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We vary the time-frequency mode structure of ultrafast pulse-pumped modulational instability (MI) twin beams in an argon-filled hollow-core kagome-style photonic crystal fiber by adjusting the pressure, pump pulse chirp, fiber length, and parametric gain. Compared to solid-core systems, the pressure-dependent dispersion landscape brings increased flexibility to the tailoring of frequency correlations, and we demonstrate that the pump pulse chirp can be used to tune the joint spectrum of femtosecond-pumped χ~((3)) sources. We also characterize the resulting mode content, not only by measuring the multimode second-order correlation function g~((2)), but also by directly reconstructing the shapes and weights of time-frequency Schmidt (TFS) modes. We show that the number of modes directly influences the shot-to-shot pulse-energy and spectral-shape fluctuations in MI. Using this approach we control and monitor the number of TFS modes within the range from 1.3 to 4 using only a single fiber.
机译:我们通过调节压力,泵脉冲啁啾,纤维长度和参数增益,改变超快脉冲泵浦调制不稳定(MI)双梁的时频模式结构通过调节压力,泵脉冲啁啾,光纤长度和参数增益。与固体核心系统相比,压力依赖性色散景观带来了对频率相关性的剪裁增加的灵活性,我们证明泵脉冲啁啾可用于调整飞秒泵浦的联合光谱χ〜((3))来源。我们还表征了所产生的模式内容,不仅通过测量多模二阶相关函数G〜((2)),而且还通过直接重建时频Schmidt(TFS)模式的形状和权重。我们表明模式的数量直接影响MI中的射击脉冲 - 能量和光谱形状波动。使用这种方法,我们只使用单个光纤控制和监视从1.3到4的范围内的TFS模式的数量。

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