论文标题
使用等离子体的有效生成可调磁性和光学涡旋
Efficient Generation of Tunable Magnetic and Optical Vortices Using Plasmas
论文作者
论文摘要
血浆是一种有吸引力的介质,可产生强大的显微镜磁性结构和可调电磁辐射,并具有可预测的拓扑,因为它的非凡能力可以维持和操纵高电流和强场。在这里,使用理论和模拟,当锐利的相对论电离锋(IF)通过轨道角度动量(oaM)经过相对较长的波长laguserre-gaussian(lg)激光脉冲,我们显示了有效产生多麦加斯磁性和可调的光学涡旋。光学涡流仅通过更改等离子体密度并在持续时间压缩的频率范围内频率上升。可以通过控制入射LG激光器的OAM模式和/或控制IF的拓扑和密度来操纵这两个涡旋的拓扑电荷。对于相对较高的(低)等离子体密度,入射LG激光脉冲的大多数能量都转化为磁性(光学)涡流。
Plasma is an attractive medium for generating strong microscopic magnetic structures and tunable electromagnetic radiation with predictable topologies due to its extraordinary ability to sustain and manipulate high currents and strong fields. Here, using theory and simulations, we show efficient generation of multi-megagauss magnetic and tunable optical vortices when a sharp relativistic ionization front (IF) passes through a relatively long-wavelength Laguerre-Gaussian (LG) laser pulse with orbital angular momentum (OAM). The optical vortex is frequency upshifted within a wide spectral range simply by changing the plasma density and compressed in duration. The topological charges of both vortices can be manipulated by controlling the OAM mode of the incident LG laser and/or by controlling the topology and density of the IF. For relatively high (low) plasma densities, most energy of the incident LG laser pulse is converted to the magnetic (optical) vortex.