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基于相对论激光-等离子体相互作用的激光驱动三级重离子加速

Laser-driven three-stage heavy-ion acceleration from relativistic laser-plasma interaction.

作者信息

Wang H Y, Lin C, Liu B, Sheng Z M, Lu H Y, Ma W J, Bin J H, Schreiber J, He X T, Chen J E, Zepf M, Yan X Q

机构信息

State Key Laboratory of Nuclear Physics and Technology, and Key Lab of High Energy Density Physics Simulation, CAPT, Peking University, Beijing 100871, China and Helmholtz Institute Jena, Fröbelstieg 3, 07743 Jena, Germany.

State Key Laboratory of Nuclear Physics and Technology, and Key Lab of High Energy Density Physics Simulation, CAPT, Peking University, Beijing 100871, China.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2014 Jan;89(1):013107. doi: 10.1103/PhysRevE.89.013107. Epub 2014 Jan 23.

Abstract

A three-stage heavy ion acceleration scheme for generation of high-energy quasimonoenergetic heavy ion beams is investigated using two-dimensional particle-in-cell simulation and analytical modeling. The scheme is based on the interaction of an intense linearly polarized laser pulse with a compound two-layer target (a front heavy ion layer + a second light ion layer). We identify that, under appropriate conditions, the heavy ions preaccelerated by a two-stage acceleration process in the front layer can be injected into the light ion shock wave in the second layer for a further third-stage acceleration. These injected heavy ions are not influenced by the screening effect from the light ions, and an isolated high-energy heavy ion beam with relatively low-energy spread is thus formed. Two-dimensional particle-in-cell simulations show that ∼100MeV/u quasimonoenergetic Fe24+ beams can be obtained by linearly polarized laser pulses at intensities of 1.1×1021W/cm2.

摘要

利用二维粒子模拟和解析模型,研究了一种用于产生高能准单能重离子束的三级重离子加速方案。该方案基于强线偏振激光脉冲与复合双层靶(前重离子层+第二层轻离子层)的相互作用。我们发现,在适当条件下,在前层通过两阶段加速过程预加速的重离子可以注入到第二层的轻离子冲击波中进行进一步的第三阶段加速。这些注入的重离子不受轻离子屏蔽效应的影响,从而形成了具有相对低能散的孤立高能重离子束。二维粒子模拟表明,通过强度为1.1×10²¹W/cm²的线偏振激光脉冲可以获得~100MeV/u的准单能Fe²⁴⁺束。

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