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Double optical gating.

机译:双光学选通。

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摘要

The observation and control of dynamics in atomic and molecular targets requires the use of laser pulses with duration less than the characteristic timescale of the process which is to be manipulated. For electron dynamics, this time scale is on the order of attoseconds where 1 attosecond = 10 -18 seconds. In order to generate pulses on this time scale, different gating methods have been proposed. The idea is to extract or "gate" a single pulse from an attosecond pulse train and switch off all the other pulses. While previous methods have had some success, they are very difficult to implement and so far very few labs have access to these unique light sources. The purpose of this work is to introduce a new method, called double optical gating (DOG), and to demonstrate its effectiveness at generating high contrast single isolated attosecond pulses from multi-cycle lasers. First, the method is described in detail and is investigated in the spectral domain. The resulting attosecond pulses produced are then temporally characterized through attosecond streaking. A second method of gating, called generalized double optical gating (GDOG), is also introduced. This method allows attosecond pulse generation directly from a carrier-envelope phase un-stabilized laser system for the first time. Next the methods of DOG and GDOG are implemented in attosecond applications like high flux pulses and extreme broadband spectrum generation. Finally, the attosecond pulses themselves are used in experiments. First, an attosecond/femtosecond cross correlation is used for characterization of spatial and temporal properties of femtosecond pulses. Then, an attosecond pump, femtosecond probe experiment is conducted to observe and control electron dynamics in helium for the first time.
机译:原子和分子靶中动力学的观察和控制要求使用持续时间小于要操纵的过程的特征时间范围的激光脉冲。对于电子动力学,此时间标度约为10秒,其中1 atto = 10 -18秒。为了在该时间尺度上产生脉冲,已经提出了不同的选通方法。这个想法是从一个阿秒脉冲串中提取或“选通”单个脉冲,然后关闭所有其他脉冲。尽管先前的方法取得了一些成功,但它们很难实施,到目前为止,几乎没有实验室可以使用这些独特的光源。这项工作的目的是介绍一种称为双重光学选通(DOG)的新方法,并展示其在从多周期激光器产生高对比度的单个孤立阿秒脉冲中的有效性。首先,详细描述该方法,并在光谱域中对其进行研究。然后通过阿秒条纹在时间上表征所产生的最终阿秒脉冲。还介绍了第二种选通方法,称为广义双光学选通(GDOG)。该方法首次允许直接从载波包络相位不稳定的激光系统产生阿秒脉冲。接下来,DOG和GDOG的方法在诸如高通量脉冲和极宽宽带频谱生成之类的秒应用中实现。最后,在实验中使用了阿秒脉冲本身。首先,使用阿秒/飞秒互相关来表征飞秒脉冲的时空特性。然后,首次进行了阿秒泵飞秒探测实验,以观察和控制氦气中的电子动力学。

著录项

  • 作者

    Gilbertson, Steve.;

  • 作者单位

    Kansas State University.;

  • 授予单位 Kansas State University.;
  • 学科 Physics Atomic.;Physics Optics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 219 p.
  • 总页数 219
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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