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Intense laser acceleration of quasi-monoenergetic protons.

机译:准单能质子的强激光加速。

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摘要

By irradiating an ultra-thin overdense foil with an intense circularly polarized laser beam, the laser radiation pressure can push the foil forward. This scheme, laser radiation pressure acceleration, is one of the most actively studied laser-plasma acceleration scheme to generate quasi-monoenergetic proton beams. However, during the acceleration process, the Rayleigh-Taylor instability may destruct the foil into a bubble-like structure with interleaving high and low density regions. The laser will then penetrate through the underdense transparent regions and cease to push the electrons effectively.;To overcome the short acceleration duration problem, a multi-species foil instead of a pure hydrogen foil is applied. The proton layer can continue to be accelerated by the Coulomb repulsion force from the partially shielded heavy ions even after electrons becoming underdense. The scheme combining shielded Coulomb repulsion and radiation pressure acceleration can significantly extend the acceleration time and obtainable proton energy with quasi-monoenergetic properties.;In this work, we examine by numerical simulation the whole process of the laser proton acceleration scheme, including the energy evolution of radiation pressure acceleration, the development of the Rayleigh-Taylor instability, the effect of shielded Coulomb repulsion using a multi-species foil and further improvement in the scheme itself to pursue a high energy quasi-monoenergetic proton beam accelerated by an intense laser beam.
机译:通过用强烈的圆偏振激光束照射超薄的过密箔片,激光辐射压力可以将箔片向前推动。这种方案,即激光辐射压力加速,是产生准单能质子束的最积极研究的激光等离子体加速方案之一。但是,在加速过程中,瑞利-泰勒(Rayleigh-Taylor)不稳定性可能会将箔片破坏成具有高低密度区域交错的气泡状结构。然后,激光将穿透低密度的透明区域,并不再有效地推动电子。为了克服较短的加速持续时间问题,应用了多种金属箔而不是纯氢箔。即使在电子变得稀疏之后,质子层仍可以通过来自部分被屏蔽的重离子的库仑排斥力继续加速。屏蔽库仑排斥和辐射压力加速相结合的方案可以显着延长加速时间并获得具有准单能性质的质子能量。在本工作中,我们通过数值模拟研究了激光质子加速方案的整个过程,包括能量演化。辐射压力加速,Rayleigh-Taylor失稳的发展,使用多物种箔的屏蔽库仑排斥效应以及计划本身的进一步改进,以追求由强激光束加速的高能量准单能质子束。

著录项

  • 作者

    Liu, Tung-Chang.;

  • 作者单位

    University of Maryland, College Park.;

  • 授予单位 University of Maryland, College Park.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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