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首页> 外文期刊>Journal of Physics, B. Atomic, Molecular and Optical Physics: An Institute of Physics Journal >Periodic orbit bifurcations as an ionization mechanism: the bichromatically driven hydrogen atom
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Periodic orbit bifurcations as an ionization mechanism: the bichromatically driven hydrogen atom

机译:周期轨道分叉作为电离机理:双色驱动的氢原子

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We investigate the multiphoton ionization of hydrogen driven by a strong bichromatic microwave field. In a regime where classical and quantum simulations agree, periodic orbit analysis captures the mechanism: through the linear stability of periodic orbits we match qualitatively the variation of experimental ionization rates with control parameters such as the amplitudes of the two modes of the field or their relative phases. Moreover, we discuss an empirical formula which reproduces quantum simulations to a high degree of accuracy. This quantitative agreement shows the mechanism by which short periodic orbits organize the dynamics in multiphoton ionization. We also analyse the effect of longer pulse durations. Finally, we compare our results with those based on the peak amplitude rule. Both qualitative and quantitative analyses are implemented for different mode-locked fields. In parameter space, the localization of the period doubling and halving allows one to predict the set of parameters (amplitudes and phase lag) where ionization occurs.
机译:我们研究了强双色微波场驱动的氢的多光子电离。在经典模拟和量子模拟相一致的状态下,周期性轨道分析抓住了这一机制:通过周期性轨道的线性稳定性,我们定性地将实验电离速率的变化与控制参数(例如两种场模式的振幅或其相对值)进行匹配。阶段。此外,我们讨论了一个经验公式,该公式可以高度精确地再现量子模拟。该定量协议显示了短周期轨道组织多光子电离动力学的机制。我们还分析了较长脉冲持续时间的影响。最后,我们将结果与基于峰值幅度规则的结果进行比较。定性和定量分析都针对不同的锁模场进行。在参数空间中,周期倍增和减半的定位使人们可以预测发生电离的一组参数(幅度和相位滞后)。

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