SUPA Department of Physics, University of Strathclyde, Glasgow G4 0NG, UK.
Central Laser Facility, STFC Rutherford Appleton Laboratory, Oxfordshire OX11 0QX, UK.
Nat Commun. 2016 Sep 14;7:12891. doi: 10.1038/ncomms12891.
Control of the collective response of plasma particles to intense laser light is intrinsic to relativistic optics, the development of compact laser-driven particle and radiation sources, as well as investigations of some laboratory astrophysics phenomena. We recently demonstrated that a relativistic plasma aperture produced in an ultra-thin foil at the focus of intense laser radiation can induce diffraction, enabling polarization-based control of the collective motion of plasma electrons. Here we show that under these conditions the electron dynamics are mapped into the beam of protons accelerated via strong charge-separation-induced electrostatic fields. It is demonstrated experimentally and numerically via 3D particle-in-cell simulations that the degree of ellipticity of the laser polarization strongly influences the spatial-intensity distribution of the beam of multi-MeV protons. The influence on both sheath-accelerated and radiation pressure-accelerated protons is investigated. This approach opens up a potential new route to control laser-driven ion sources.
对等离子体粒子对强激光光的集体响应的控制是相对论光学的固有特性,是紧凑型激光驱动粒子和辐射源的发展,以及一些实验室天体物理现象的研究的固有特性。我们最近证明,在高强度激光辐射焦点处的超薄箔中产生的相对论等离子体孔径可以诱导衍射,从而能够基于偏振对等离子体电子的集体运动进行控制。在这里,我们表明,在这些条件下,电子动力学被映射到通过强电荷分离感应静电场加速的质子束中。通过 3D 粒子模拟实验和数值模拟证明,激光偏振的椭圆度强烈影响多 MeV 质子束的空间强度分布。研究了对鞘加速和辐射压力加速质子的影响。这种方法为控制激光驱动的离子源开辟了一条新的潜在途径。