外激光场中的相对论涡旋电子动力学

Mamutjan Ababekri, Yu Wang, Ren-Tong Guo, Zhong-Peng Li, Jian-Xing Li
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引用次数: 0

摘要

研究涡旋电子与电磁场的相互作用对于推进粒子加速技术、背景场散射理论以及获得用于材料诊断的新型电子束至关重要。在这项工作中,我们研究了涡旋电子在线性偏振(LP)和圆偏振(CP)激光脉冲中的传播,既包括单独的传播,也包括它们在双模激光脉冲中的组合形式。利用沃尔科夫-贝塞尔(Volkov-Bessel)波函数建立了理论形式主义,并获得了作为关键观测量的四电流密度。数值结果表明了涡旋电子在外部激光器中的动力学特性,显示涡旋电子的束中心遵循点电荷电子的经典运动,同时保持了涡旋特征态和叠加模式的概率分布结构。在双模激光场中,LP 和 CP 激光脉冲的联合效应允许在飞秒和亚纳米尺度上对涡旋电子进行多功能控制,而这是 LP 或 CP 激光所不具备的。我们的发现证明了通过激光脉冲对涡旋电子的多功能控制,我们的形式主义为激光背景下的涡旋散射提供了参考,并启发了在激光控制下实现新型涡旋模式作为特殊材料的定向诊断探针。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamics of Relativistic Vortex Electrons in External Laser Fields
Investigating vortex electron interactions with electromagnetic fields is essential for advancing particle acceleration techniques, scattering theory in background fields, and obtaining novel electron beams for material diagnostics. A systematic investigation into the dynamics of vortex electrons in external laser fields and the exploration of laser-induced vortex modes remains lacking. In this work, we study the propagation of vortex electrons in linearly polarized (LP) and circularly polarized (CP) laser pulses, both separately and in their combined form in two-mode laser pulses. The theoretical formalism is developed by utilizing Volkov-Bessel wave functions, and the four-current density is obtained as a crucial observable quantity. Numerical results illustrate the dynamics of vortex electrons in external lasers, showing that the beam center of the vortex electron follows the classical motion of a point charge electron, while maintaining the probability distribution structure for both vortex eigenstates and superposition modes. The combined effect of LP and CP laser pulses in the two-mode laser field allows for the versatile control of vortex electrons, which is absent with LP or CP lasers alone, at femtosecond and sub-nanometer scales. Our findings demonstrate the versatile control over vortex electrons via laser pulses, with our formalism providing a reference for vortex scattering in laser backgrounds and inspiring the laser-controlled achievement of novel vortex modes as targeted diagnostic probes for specialized materials.
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