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Computational investigation of intense short-wavelength laser interaction with rare gas clusters.

机译:与稀有气体团簇的强短波激光相互作用的计算研究。

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摘要

Clusters of atoms have remarkable optical properties that were exploited since the antiquity. It was only during the late 20th century though that their production was better controlled and opened the door to a better understanding of matter. Lasers are the tool of choice to study these nanoscopic objects so scientists have been blowing clusters with high intensities and short duration laser pulses to gain insights on the dynamics at the nanoscale. Clusters of atoms are an excellent first step in the study of bio-molecules imaging. New advancements in laser technology in the shape of Free Electron Lasers (FEL) made shorter and shorter wavelengths accessible from the infrared (IR) to the vacuum and extreme ultra-violet (VUV and XUV) to even X-rays. Experiments in these short wavelengths regimes revealed surprisingly high energy absorption that are yet to be fully explained.;This thesis tries to increase the global knowledge of clusters of rare-gas atoms interacting with short duration and high intensity lasers in the VUV and XUV regime. Theoretical and numerical tools were developed and a novel model of energy transfer based on excited states will be presented.;The first part describes the current knowledge of laser-cluster interaction in the short wavelength regime followed by the description of the new model. In the second part of the thesis the different tools and implementations used throughout this work are presented. Third, a series of journal articles (of which four are published and one to be submitted) are included where our models and tools were successfully used to explain experimental results.
机译:自上古以来,原子团簇就具有显着的光学性质。直到20世纪后期,他们的生产才受到更好的控制,并为更好地了解物质打开了大门。激光是研究这些纳米物体的首选工具,因此科学家们一直在吹高强度和短持续时间的激光脉冲簇,以获取有关纳米级动力学的见解。原子团簇是生物分子成像研究中出色的第一步。自由电子激光器(FEL)形式的激光技术的新进步使得从红外(IR)到真空以及从极紫外(VUV和XUV)甚至X射线可访问的波长越来越短。在这些短波长范围内进行的实验揭示了令人惊讶的高能量吸收,尚待充分解释。本论文试图增加在VUV和XUV范围内与短时间高强度激光相互作用的稀有气体原子团簇的全球知识。开发了理论和数值工具,并提出了一种基于激发态的新的能量转移模型。第一部分描述了短波长范围内激光-团簇相互作用的当前知识,然后描述了新模型。在论文的第二部分,介绍了整个工作中使用的不同工具和实现。第三,包括一系列期刊文章(其中四篇已发表,另一篇待提交),其中我们的模型和工具已成功用于解释实验结果。

著录项

  • 作者

    Bigaouette, Nicolas.;

  • 作者单位

    University of Ottawa (Canada).;

  • 授予单位 University of Ottawa (Canada).;
  • 学科 Physics Optics.;Physics Quantum.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 153 p.
  • 总页数 153
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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