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Characterisation, wavefront reconstruction, and propagation of ultra-broadband laser pulses from Hartmann-Shack measurements

机译:来自Hartmann-Shack测量的超宽带激光脉冲的表征,波前重建和传播

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Experiments in laser physics often require more comprehensive information about a beam than can be extracted from temporal and spatial profile measurement alone. In particular, the wavefront has considerable effect on both irradiance and phase distribution near focus, and thus large impact on the efficiency of non-linear coherent processes such as generation of higher harmonics from femtosecond ultra-short laser pulses. Here we present Hartmann-Shack wavefront measurements of ultra-broadband laser pulses with a spectral bandwidth of >190 THz, which are produced by focusing amplified pulses from a 20 fs Ti:Sapphire oscillator-amplifier system into an Argon filled hollow fibre of 400 μm diameter. After re-compression the pulses were analyzed with the Hartmann-Shack sensor, both at a distance of 140 cm behind the fibre exit and after reflection from a concave mirror (f = 100 mm). Measurements of the overall polychromatic wavefront are faced to a couple of quasi-monochromatic ones covering the whole spectrum. Incoherent superposition of the spectral components yields excellent agreement to the measured overall wavefront, showing that the total wavefront can be sensed reliably by a single measurement. Furthermore, comparison of numerically propagated and measured wavefronts shows good agreement for different spectral components: the measured overall wavefront fits, within sensor accuracy, the numerically propagated one obtained by incoherent superposition of its quasi-monochromatic parts. Drawbacks and opportunities of the Hartmann-Shack technique in ultra-short pulse sensing are briefly discussed.
机译:激光物理学的实验通常需要更多的横梁信息,而不是单独地从时间和空间轮廓测量中提取。特别是,波前对焦点附近的辐照度和相位分布具有相当大的影响,从而对非线性相干工艺的效率进行了大的影响,例如来自飞秒超短激光脉冲的更高谐波的产生。在这里,我们用Hartmann-Shack波前测量超宽带激光脉冲具有> 190THz的光谱带宽,这是通过从20 fs ti的扩增脉冲聚焦到400μm的氩填充中空纤维中的扩增脉冲来生产直径。在重新压缩之后,用Hartmann-Shack传感器分析脉冲,两者都在光纤出口后面的距离为140厘米,并且从凹面镜(F = 100mm)反射后。整体多色波前的测量涉及几个覆盖整个光谱的四个准单色。光谱分量的不连贯叠加产生了对测量的总波前的良好一致性,表明可以通过单一测量可靠地感测到总波线。此外,数值传播和测量的波前的比较显示了不同光谱分量的良好一致性:测量的整体波前符合传感器精度,在传感器精度内,通过对其准单色部件的不相干叠加而获得的数值传播。简要讨论了超短脉冲感测中Hartmann-Shack技术的缺点和机遇。

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