首页> 外文期刊>Modern Physics Letters, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Electron acceleration by a circularly polarized electromagnetic wave publishing in plasma with a periodic magnetic field and an axial guide magnetic field
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Electron acceleration by a circularly polarized electromagnetic wave publishing in plasma with a periodic magnetic field and an axial guide magnetic field

机译:通过具有周期性磁场和轴向导磁场的等离子体中的圆偏振电磁波的电子加速度

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In this paper, we study the electron acceleration by a circularly polarized electromagnetic wave propagating through plasma in the presence of a periodic and an axial guide magnetic field. A numerical calculation in MATLAB software was developed by employing the fourth-order Runge-Kutta method for studying the electron energy and electron trajectory in plasma medium. The equations governing the electron momentum and energy which describe electron acceleration by a circularly polarized laser pulse have been obtained. It is shown that by choosing an appropriate wiggler field frequency at short distances, the electron retains an adequate amount of energy. In addition, it is found that due to the simultaneous existence of the wiggler field and field of laser pulse and their combined effects, the electron in the direction of the laser pulse propagating, turns around and subsequently, the electron transverse momentum increases and as a result the electron escapes from the laser pulse near the laser pulse peak. Furthermore, it is seen that by increasing the laser intensity, the electron energy decreases and by decreasing to an appropriate value while employing a wiggler magnetic field, a higher peak of energy is gained.
机译:在本文中,我们通过在周期性和轴向导磁场的存在下通过等离子体传播的圆偏振电磁波来研究电子加速。通过采用用于研究等离子体介质中的电子能量和电子轨迹的第四阶跑为-Kutta方法,开发了MATLAB软件的数值计算。已经获得了用圆极化激光脉冲描述电子加速的电子动量和能量的方程。结果表明,通过在短距离下选择适当的威格勒场频率,电子将保持足够的能量。另外,发现由于Wiggler场的同时存在和激光脉冲的领域及其组合效果,在激光脉冲的方向上的电子传播,转动随后转动,电子横向动量增加并且作为一个结果电子从激光脉冲峰值附近的激光脉冲逸出。此外,可以看出,通过增加激光强度,电子能量减小并通过在采用Wiggler磁场的同时降低到适当的值,因此获得了更高的能量峰值。

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