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首页> 外文期刊>Physical Review, A >Controlling electron-ion rescattering in two-color circularly polarized femtosecond laser fields
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Controlling electron-ion rescattering in two-color circularly polarized femtosecond laser fields

机译:控制双色圆偏振飞秒激光场中的电子离子散射

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摘要

High-harmonic generation driven by two-color counter-rotating circularly polarized laser fields was recently demonstrated experimentally as a breakthrough source of bright, coherent, circularly polarized beams in the extreme ultraviolet and soft-x-ray regions. However, the conditions for optimizing the single-atom yield are significantly more complex than for linearly polarized driving lasers and are not fully understood. Here we present a comprehensive study of strong-field ionization-the complementary process to high-harmonic generation-driven by two-color circularly polarized fields. We uncover the conditions that lead to enhanced electronion rescattering, which should correspond to the highest single-atom harmonic flux. Using a velocity map imaging photoelectron spectrometer and tomographic reconstruction techniques, we record three-dimensional photoelectron distributions resulting from the strong-field ionization of argon atoms across a broad range of driving laser intensity ratios. In combination with analytical predictions and advanced numerical simulations, we show that "hard" electron-ion rescattering is optimized when the second-harmonic field has an intensity approximately four times higher than that of the fundamental driving field. We also investigate electron-ion rescattering with co-rotating fields, and find that rescattering is significantly suppressed when compared with counter-rotating fields.
机译:最近,通过实验证明了由两色反向旋转的圆偏振激光场驱动的高谐波产生,是在极端紫外线和柔和x射线区域中明亮,相干的圆偏振光束的突破源。但是,用于优化单原子产率的条件比线性偏振驱动激光器要复杂得多,并且尚未完全了解。在这里,我们对强场电离进行全面研究,该过程是由双色圆偏振场驱动的高谐波产生的补充过程。我们发现了导致增强的电子离子散射的条件,该条件应对应于最高的单原子谐波通量。使用速度图成像光电子能谱仪和层析成像重建技术,我们记录了在广泛的驱动激光强度比范围内,氩原子的强场电离所产生的三维光电子分布。结合分析预测和先进的数值模拟,我们表明,当二次谐波磁场的强度大约是基本驱动场的强度的四倍时,“硬”电子离子散射得到了优化。我们还研究了同向旋转场对电子离子的散射,发现与反向旋转场相比,散射被显着抑制。

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