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Shock Wave Acceleration of Monoenergetic Protons using a Multi-Terawatt Carbon Dioxide Laser.

机译:多兆瓦二氧化碳激光对单能质子的冲击波加速。

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摘要

Compact and affordable ion accelerators based on laser-produced plasmas have potential applications in many fields of science and medicine. However, the requirement of producing focusable, narrow-energy-spread, energetic beams has proved to be challenging. In this thesis, an experimental demonstration of the generation of monoenergetic ions via collisionless electrostatic shock waves driven in a laser produced plasma is presented.;The physical processes behind shock wave formation, propagation, and their potential to produce monoenergetic ion beams is explored using 1D OSIRIS simulations. It is observed that a shock wave can be formed from the interpenetration of two plasmas via the expansion from a density discontinuity or an initial relative drift velocity. These processes can be instigated in the laser driven case where the laser can produce a moving sharp density spike and strong electron heating as it bores a hole through an overdense plasma. Under appropriate conditions, an electrostatic shock is formed that detaches from he laser and propagates in the plasma even after the laser is turned off. This shock can then overtake and reflect ions from the upstream plasma and accelerate them to yield a relatively narrow energy spread.;A multi-terawatt CO2 laser system was developed at the UCLA Neptune Laboratory for exploring laser-driven shock wave acceleration of ions. The theory behind CO2 amplification of picosecond pulses where the bandwidth is provided by the pressure of the CO2 gas and the field of the laser pulse itself is developed. These ideas are applied for the production of 3 ps CO2 laser pulses with peak powers of up to 15 TW, currently the most powerful CO2 laser pulses ever produced.;These laser pulses were used for laser-driven shock wave acceleration of protons in a hydrogen gas jet where the peak plasma density is in the range of 3–5 ncr, where ncr is the critical plasma density for 10 μm radiation. Interferometry using a picosecond 532 nm laser pulse showed that the plasma has a dynamically formed profile with a sharp (10λ) rise to overcritical densities and a long exponential fall (30λ). Protons accelerated from this interaction reach energies of 22 MeV, are contained within a narrow energy spread of ∼1%, and have geometrical emittances as low as a mm mrad. 2D OSIRIS simulations show that the laser-driven shock overtakes and reflects the protons in the slowly expanding hydrogen plasma resulting in a narrow energy spectrum. Scaling of this mechanism to higher laser powers through simulations predict the production of ∼200 MeV protons needed for radiotherapy by using current laser technology.
机译:基于激光产生等离子体的紧凑且价格合理的离子加速器在科学和医学的许多领域都有潜在的应用。然而,事实证明,产生可聚焦的,窄能量扩散的高能光束的要求极具挑战性。本文对通过激光产生的等离子体驱动的无碰撞静电冲击波产生单能离子的实验进行了实验演示;;使用1D探索了冲击波形成,传播及其产生单能离子束的潜力的物理过程。 OSIRIS模拟。观察到,可以通过密度不连续性或初始相对漂移速度的扩展,由两个等离子体的互穿形成冲击波。在激光驱动的情况下,可以激发这些过程,在这种情况下,当激光穿过过密度的等离子体钻孔时,激光会产生移动的尖锐密度峰值和强烈的电子加热。在适当的条件下,即使在关闭激光之后,也会形成静电冲击,该静电冲击会与激光分离并在等离子体中传播。然后,这种冲击会吸收并反射上游等离子体中的离子,并加速它们产生相对较窄的能量散布。加州大学洛杉矶分校海王星实验室开发了一个多兆瓦的CO2激光系统,用于探索激光驱动的离子加速激波。皮秒脉冲的CO2放大背后的理论得到了发展,其中带宽由CO2气体的压力提供,而激光脉冲本身的场则提供带宽。这些想法可用于产生峰值功率高达15 TW的3 ps CO2激光脉冲,这是目前所产生的最强大的CO2激光脉冲;这些激光脉冲用于在氢中质子的激光驱动激波加速中使用气体喷射,其峰值等离子体密度在3-5 ncr的范围内,其中ncr是10μm辐射的临界等离子体密度。使用皮秒532 nm激光脉冲进行的干涉测量显示,等离子体具有动态形成的轮廓,具有急剧上升(10λ)到超临界密度和长指数下降(30λ)的趋势。通过这种相互作用加速的质子达到22 MeV的能量,包含在约1%的窄能量散布范围内,并具有低至mm mrad的几何发射率。二维OSIRIS模拟表明,激光驱动的冲击力会覆盖并反射缓慢扩展的氢等离子体中的质子,从而导致能谱变窄。通过仿真将该机制扩展到更高的激光功率,可以预测使用当前的激光技术将产生放射治疗所需的200 MeV质子。

著录项

  • 作者

    Haberberger, Daniel Joseph.;

  • 作者单位

    University of California, Los Angeles.;

  • 授予单位 University of California, Los Angeles.;
  • 学科 Physics Fluid and Plasma.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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