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Relativistic Electromagnetic Solitons Produced by Ultrastrong Laser Pulses in Plasmas

机译:由超自特激光脉冲在等离子体中产生的相对论电磁孤子

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Low frequency, relativistic sub-cycle localised (soliton-like) concentrations of the electromagnetic (em) energy are found in two-dimensional (2D) and in three-dimensional (3D) Particle in Cell simulations of the interaction of ultra-short, high-intensity laser pulses with homogeneous and inhomogeneous plasmas. These solitons consist of electron and ion density depressions and intense em field concentrations with a frequency definitely lower than that of the laser pulse. The downshift of the pulse frequency, due to the depletion of the pulse energy, causes a significant portion of the pulse em energy to become trapped as solitons, slowly propagating inside the plasma. In an earlier phase solitons are formed due to the trapping of the em radiation inside an electron cavity, while ions can be assumed to remain at rest. Later on, after (m{sub}i/m{sub}e){sup}(1/2) times the laser period, ions start to move and the ion depletion occurs producing a slowly growing hole in the plasma density. In inhomogeneous plasmas the solitons are accelerated toward the plasma vacuum interface where they radiate away their energy in the form of bursts of low frequency em radiation. In the frame of a ID cold hydrodynamic model for an electron-ion plasma, the existence of multipeaked em solitons has been investigated both analytically and numerically. The analytical expression for a sub-cycle relativistic soliton has been derived for circularly polarized pulses in a cold isotropic plasma, and in the presence of an externally applied magnetic field. Recently, em relativistic solitons in a hot multi-component plasma have been investigated in the frame of an hydrodynamic (adiabatic) model and of a kinetic (isothermal) model. An overview of the most recent analytical and numerical results on the soliton dynamics is given.
机译:低频,相对论的子循环定位(孤子状)电磁(EM)能量的浓度在二维(2D)和三维(3D)粒子中的细胞模拟中的超短,具有均匀和不均匀等离子体的高强度激光脉冲。这些孤子由电子和离子密度凹陷组成,并且频率呈频率肯定低于激光脉冲的浓度。由于脉冲能量的耗尽而导致脉冲频率的下降导致脉冲EM能量的大部分被捕获为孤子,在等离子体内缓慢地传播。在较早的相孤子中,由于电子腔内的捕获而形成,而离子可以假设在静止时保持。后来,之后(M {Sub} I / m {sub} e){sup}(1/2)次激光周期,离子开始移动,并且发生离子耗尽在等离子体密度中产生缓慢生长的孔。在不均匀的等离子体中,孤子朝向等离子体真空界面加速,在那里它们以低频EM辐射的突发形式辐射它们的能量。在用于电子离子等离子体的ID冷流体动力学模型的框架中,已经在分析和数值上研究了多拍EM孤子的存在。已经衍生用于循环相对论孤子的分析表达,用于寒冷各向同性等离子体中的圆偏振脉冲,并且在外部施加的磁场存在下。最近,已经在流体动力学(绝热)模型和动力学(等温)模型的框架中研究了热多组分等离子体中的EM相对论孤子。给出了孤子动力学上最新的分析和数值结果的概述。

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