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Review of ultrashort pulse measurement: changing the basic ultrashort pulse experiment

机译:综述超短脉冲测量:改变基本超微脉冲实验

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Until recently, experiments in ultrashort pulse science have involved measuring the spectrum and autocorrelation of the input pulse(s) and only measuring the integrated energy or perhaps time-resolved energy of the output signal. These experiments ignored the information contained in the input and output pulse phases and intensity profiles. New pulse measurement techniques such as frequency-resolved optical grating, when combined with older techniques such as spectral interferometry, now allow the complete characterization of the pulses. These techniques allow measurements of the intensity, phase, and polarization state of ultrashort pulses as functions of time (or frequency) and space. These techniques work for wavelengths from the UV to the IR and for extremely weak pulses and very high power pulses. They also allow entirely new classes of experiments for measuring ultrafast phenomena. Now the phases and temporal profiles of the input pulses may be measured and controlled, and the intensity and phase of the output pulses can also be measured. These new measurement techniques have thus greatly increased the obtainable information in ultrafast experiments. This paper reviews current pulse measurement methods including frequency-resolved optical grating and spectral interferometry and describes how they are changing the way that ultrashort pulse experiments are performed.
机译:直到最近,超短脉冲科学的实验涉及测量输入脉冲的频谱和自相关,并且仅测量输出信号的集成能量或可能是时间分辨能量。这些实验忽略了输入和输出脉冲阶段和强度分布中包含的信息。新的脉冲测量技术,例如频率分辨光学光栅,当与诸如光谱干涉法的旧技术组合时,现在允许脉冲的完整表征。这些技术允许以超短脉冲的强度,相位和偏振状态作为时间(或频率)和空间的功能的测量值。这些技术对于从UV到IR的波长和极弱的脉冲和非常高的功率脉冲的工作。他们还允许全新的衡量超快现象的实验。现在可以测量和控制输入脉冲的相位和时间轮廓,并且还可以测量输出脉冲的强度和相位。因此,这些新的测量技术大大增加了超快实验中可获得的信息。本文评论了当前脉冲测量方法,包括频率分辨光学光栅和光谱干涉测量,并描述了它们如何改变执行超短脉冲实验的方式。

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