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阿秒光脉冲群聚的直接观测。

Direct observation of attosecond light bunching.

作者信息

Tzallas P, Charalambidis D, Papadogiannis N A, Witte K, Tsakiris G D

机构信息

Max-Planck-Institut für Quantenoptik, D-85748 Garching, Germany.

出版信息

Nature. 2003 Nov 20;426(6964):267-71. doi: 10.1038/nature02091.

Abstract

Temporal probing of a number of fundamental dynamical processes requires intense pulses at femtosecond or even attosecond (1 as = 10(-18) s) timescales. A frequency 'comb' of extreme-ultraviolet odd harmonics can easily be generated in the interaction of subpicosecond laser pulses with rare gases: if the spectral components within this comb possess an appropriate phase relationship to one another, their Fourier synthesis results in an attosecond pulse train. Laser pulses spanning many optical cycles have been used for the production of such light bunching, but in the limit of few-cycle pulses the same process produces isolated attosecond bursts. If these bursts are intense enough to induce a nonlinear process in a target system, they can be used for subfemtosecond pump-probe studies of ultrafast processes. To date, all methods for the quantitative investigation of attosecond light localization and ultrafast dynamics rely on modelling of the cross-correlation process between the extreme-ultraviolet pulses and the fundamental laser field used in their generation. Here we report the direct determination of the temporal characteristics of pulses in the subfemtosecond regime, by measuring the second-order autocorrelation trace of a train of attosecond pulses. The method exhibits distinct capabilities for the characterization and utilization of attosecond pulses for a host of applications in attoscience.

摘要

对许多基本动力学过程进行时间探测需要飞秒甚至阿秒(1阿秒 = 10⁻¹⁸秒)时间尺度的强脉冲。在亚皮秒激光脉冲与稀有气体的相互作用中,很容易产生极紫外奇次谐波的频率“梳”:如果这个频率梳内的光谱成分彼此具有适当的相位关系,它们的傅里叶合成会产生阿秒脉冲序列。跨越许多光学周期的激光脉冲已被用于产生这种光脉冲群聚,但在少周期脉冲的极限情况下,相同的过程会产生孤立的阿秒脉冲串。如果这些脉冲串强度足够大,能在目标系统中诱导非线性过程,它们就可用于超快过程的亚飞秒泵浦 - 探测研究。迄今为止,所有用于定量研究阿秒光定位和超快动力学的方法都依赖于对极紫外脉冲与其产生过程中所使用的基频激光场之间的互相关过程进行建模。在此,我们通过测量一列阿秒脉冲的二阶自相关迹线,直接确定了亚飞秒范围内脉冲的时间特性。该方法在阿秒科学的众多应用中,展现出了用于表征和利用阿秒脉冲的独特能力。

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