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Interaction of intense short laser pulses with gases of nanoscale atomic and molecular clusters.

机译:强短脉冲与纳米级原子和分子簇气体的相互作用。

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摘要

We study the interaction of intense laser pulses with gases of van der Waals bound atomic aggregates called clusters in the range of laser-cluster parameters such that kinetic as well as hydrodynamic effects are active. The clustered gas absorbs the laser pulse energy efficiently, producing x-rays, extreme ultraviolet radiation, energetic particles and fusion neutrons.; First, we investigate the effect of pulse duration on the heating of a single cluster in a strong laser field using a 2-D electrostatic particle-in-cell (PIC) code. Heating is dominated by a collision-less resonant absorption process that involves energetic electrons transiting through the cluster. A size-dependent intensity threshold defines the onset of this resonance [Taguchi et al., Phys. Rev. Lett., v90(20), (2004)]. It is seen that increasing the laser pulse width lowers this intensity threshold and the energetic electrons take multiple laser periods to transit the cluster instead of one laser period as previously recorded [Taguchi et al., Phys. Rev. Lett., v90(20), (2004)]. Results of our numerical simulations showing the effect of pulse duration on the heating rate and the evolution of the electron phase space are presented in this dissertation. Our simulations show that strong electron heating is accompanied by the generation of a quasi-monoenergetic high-energy peak in the ion kinetic energy distribution function. The energy at which the peak occurs is pulse duration dependent. Calculations of fusion neutron yield from exploding deuterium clusters using the PIC model with periodic boundary conditions are also presented.; We also investigate the propagation of the laser pulse through a gas of clusters that is described by an effective dielectric constant determined by the single cluster polarizability. For computational advantage, we adopt a uniform density description of the exploding clusters, modified to yield experimentally consistent single cluster polarizability, and couple it to a Gaussian description of the laser pulse. This model is then used to study self-focusing, absorption, and spectral broadening of the laser pulse. The model is further extended to allow for a fraction of the gas to be present as unclustered monomers and to include the effect of unbound electrons produced in the laser-cluster interaction.
机译:我们研究了强激光脉冲与范德华结合的原子团簇的气体在激光团簇参数范围内的相互作用,从而使动力学以及流体动力学效应都得到激活。聚集的气体有效吸收激光脉冲能量,产生X射线,极紫外辐射,高能粒子和聚变中子。首先,我们使用2-D静电粒子在细胞内(PIC)代码研究脉冲持续时间对强激光场中单个簇加热的影响。加热主要由无碰撞共振吸收过程决定,该过程涉及高能电子通过团簇传输。取决于大小的强度阈值定义了这种共振的开始[Taguchi et al。,Phys。 Rev.Lett。,v90(20),(2004)]。可以看出,增加激光脉冲宽度会降低该强度阈值,并且高能电子需要多个激光周期来穿过团簇,而不是先前记录的一个激光周期[Taguchi et al。,Phys。 Rev.Lett。,v90(20),(2004)]。本文的数值模拟结果表明了脉冲持续时间对加热速率和电子相空间演变的影响。我们的模拟表明,强电子加热伴随离子动能分布函数中的准单能高能峰的产生。出现峰值的能量取决于脉冲持续时间。还提出了使用具有周期性边界条件的PIC模型计算爆炸的氘团簇引起的聚变中子产率的计算。我们还研究了通过团簇气体传播的激光脉冲,该团簇气体的有效介电常数由单个团簇的极化率决定。为了获得计算上的优势,我们对爆炸团簇采用统一的密度描述,对其进行修改以产生实验上一致的单团簇极化率,并将其与激光脉冲的高斯描述相耦合。然后,使用该模型研究激光脉冲的自聚焦,吸收和光谱展宽。该模型进一步扩展,以允许一部分气体以未聚簇单体的形式存在,并包括在激光-聚簇相互作用中产生的未结合电子的影响。

著录项

  • 作者

    Gupta, Ayush.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Physics Fluid and Plasma.; Physics Optics.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 117 p.
  • 总页数 117
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 等离子体物理学;光学;
  • 关键词

  • 入库时间 2022-08-17 11:40:36

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