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首页> 外文期刊>AIP Advances >Influence of flying mirror features and time delay between two counterpropagating laser pulses on the generated attosecond pulse intensity in near-critical density plasmas
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Influence of flying mirror features and time delay between two counterpropagating laser pulses on the generated attosecond pulse intensity in near-critical density plasmas

机译:两种反向激光脉冲在近临界密度等离子体中产生的抗秒脉冲强度的两个反向激光脉冲之间的影响

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摘要

The attosecond pulse generation by the interaction of two counterpropagating ultrashort laser pulses with near-critical density plasma is simulated using two-dimensional particle in the cell method. Results of the simulations showed the flying mirror properties such as density and shape change, while moving through the plasma, behind the intense driver laser. We investigated the effects of the mirror features on the produced attosecond pulse intensity by setting various delay times between the driver and source pulses so that the source encounters the mirror at different points. It is demonstrated that the higher density of the mirror, particularly in its center (due to the Gaussian transverse profile of the source), in addition to its suitable curvature and surface smoothness, results in a more intense reflection. Moreover, a considerable size of the hole created in the mirror center due to the self-injection process has a destructive effect on the reflection efficiency. Finally, an efficient reflection can be obtained by controlling the delay time. The optimal delay for arbitrary parameters of the laser and plasma depends on the region in which the most efficient flying mirrors are created by the mutual interaction of the plasma density and the driver amplitude along with considering the pulse situation when reaching the mirror. By analyzing the electron phase space, it was found that the velocity of density spikes changes rapidly when passing through the plasma. The higher speed of the electrons of the mirrors contributing to the source reflection leads to the production of the higher upshifted frequency peak in different source delays.
机译:通过细胞法中的二维颗粒模拟了两个反向超出激光脉冲相互作用的反速度脉冲产生与近乎临界密度等离子体的模拟。模拟结果显示了诸如密度和形状变化的飞镜属性,同时穿过等离子体,在激烈的驾驶员激光器后面。我们通过在驾驶员和源脉冲之间设置各种延迟时间来调查镜像特征对产生的Atosecond脉冲强度的影响,以便源在不同点处遇到镜子。证明镜子的较高密度,特别是在其中心(由于源的高斯横曲面),除了其合适的曲率和表面光滑度之外,导致更强烈的反射。此外,由于自入射过程,在镜子中心中产生的相当大的孔对反射效率具有破坏性影响。最后,可以通过控制延迟时间来获得有效的反射。激光器和等离子体的任意参数的最佳延迟取决于通过等离子体密度和驾驶员幅度的相互相互作用而产生最有效的飞镜的区域以及考虑到镜子时的脉冲情况。通过分析电子相空间,发现密度尖峰的速度在通过等离子体时迅速变化。对源反射有贡献的镜子的电子的较高速度导致在不同源延迟中的更高升频峰的产生。

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