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通过激光驱动的透明度增强混合加速方案产生近100兆电子伏特的质子。

Near-100 MeV protons via a laser-driven transparency-enhanced hybrid acceleration scheme.

作者信息

Higginson A, Gray R J, King M, Dance R J, Williamson S D R, Butler N M H, Wilson R, Capdessus R, Armstrong C, Green J S, Hawkes S J, Martin P, Wei W Q, Mirfayzi S R, Yuan X H, Kar S, Borghesi M, Clarke R J, Neely D, McKenna P

机构信息

SUPA Department of Physics, University of Strathclyde, Glasgow, G4 0NG, UK.

Central Laser Facility, STFC Rutherford Appleton Laboratory, Oxfordshire, OX11 0QX, UK.

出版信息

Nat Commun. 2018 Feb 20;9(1):724. doi: 10.1038/s41467-018-03063-9.

Abstract

The range of potential applications of compact laser-plasma ion sources motivates the development of new acceleration schemes to increase achievable ion energies and conversion efficiencies. Whilst the evolving nature of laser-plasma interactions can limit the effectiveness of individual acceleration mechanisms, it can also enable the development of hybrid schemes, allowing additional degrees of control on the properties of the resulting ion beam. Here we report on an experimental demonstration of efficient proton acceleration to energies exceeding 94 MeV via a hybrid scheme of radiation pressure-sheath acceleration in an ultrathin foil irradiated by a linearly polarised laser pulse. This occurs via a double-peaked electrostatic field structure, which, at an optimum foil thickness, is significantly enhanced by relativistic transparency and an associated jet of super-thermal electrons. The range of parameters over which this hybrid scenario occurs is discussed and implications for ion acceleration driven by next-generation, multi-petawatt laser facilities are explored.

摘要

紧凑型激光等离子体离子源潜在应用的范围推动了新加速方案的发展,以提高可实现的离子能量和转换效率。虽然激光与等离子体相互作用的不断演变的性质可能会限制单个加速机制的有效性,但它也能够促成混合方案的开发,从而对产生的离子束的特性进行更多程度的控制。在此,我们报告了通过线偏振激光脉冲辐照超薄箔片中的辐射压力 - 鞘层加速混合方案,将质子高效加速到超过94 MeV能量的实验演示。这是通过双峰静电场结构实现的,在最佳箔片厚度下,相对论透明度和相关的超热电子喷流会显著增强该结构。讨论了出现这种混合情况的参数范围,并探讨了其对下一代多拍瓦激光装置驱动的离子加速的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d6a5/5820283/c92a13d7852f/41467_2018_3063_Fig1_HTML.jpg

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